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Confinement, spatial correlations and flexibility in the melting transition of DNA

Abstract

La tesis estudia la fusión de ADN utilizando difracción de neutrones, difracción de rayos X y calorimetría. Las técnicas de difracción pueden acceder correlaciones estructurales en las moléculas durante la transición de fase que son definen la naturaleza de la transición pero son prácticamente desconocidas a día de hoy. Un modelo basado en física estadística (el modelo de Peyrard-Bishop-Dauxious) fue utilizado para reproducir los datos experimentales. Esto refuerza el modelo y nos permite predecir las características de la transición al nivel mesoscopico de los pares de bases. Como proyecto secundario, una cadena corta de ADN que incluye la secuencia Widom-601 fue estudiada con técnicas de difracción de ángulo pequeño. Está secuencia es conocida por su importancia en el empaquetamiento del ADN para formar la cromatina en el núcleo celular. Los resultados presentados en la tesis sugieren que la geometría específica de esta secuencia puede explicar parcialmente su función biológica.

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Confinement, spatial correlations and flexibility in the melting transition of DNA

Author: González, Adrián
Publisher: Universidad de Burgos
Year: 2018
DOI: 10.36443/10259/5899
Source: https://riubu.ubu.es/bitstream/10259/5899/1/Gonz%c3%a1lez_Rodr%c3%adguez-Tesis.pdf
Con inemen , spa ial co ela ions and lexibili y in he
mel ing ansi ion o DNA
Uni e si y o Bu gos and Ins i u Laue-Lange in
Ad i´an Gonz´alez Rod ´ıguez
Ad iso s: And ew Wildes and San iago Cues a L´opez
Decembe 20, 2017
2
Con en s
1 In oduc ion 5
2 Me hods and heo y 10
2.1 Samplep epa a ion................................ 10
2.1.1 P oduc ion o o ien ed DNA ibe s . . . . . . . . . . . . . . . . . . . 10
2.1.2 Widom-sequence ............................. 15
2.2 Di e en ial scanning calo ime y . . . . . . . . . . . . . . . . . . . . . . . . . 16
2.2.1 The modynamical p inciples . . . . . . . . . . . . . . . . . . . . . . . 17
2.2.2 DSC echnique .............................. 17
2.2.3 Ins umen s................................ 18
2.2.4 Expe imen al p o ocol . . . . . . . . . . . . . . . . . . . . . . . . . . 20
2.2.5 Da aanalysis ............................... 21
2.3 In oduc ion o sca e ing heo y . . . . . . . . . . . . . . . . . . . . . . . . 23
2.3.1 Basic p inciples o a sca e ing expe imen . . . . . . . . . . . . . . . 23
1
2.3.2 Sca e ing by a single ixed a om . . . . . . . . . . . . . . . . . . . . 26
2.3.3 Sca e ing om an assembly o a oms . . . . . . . . . . . . . . . . . . 27
2.3.4 Fibe Di ac ion ............................. 28
2.3.5 Small angle sca e ing . . . . . . . . . . . . . . . . . . . . . . . . . . 35
2.4 Di ac ionIns umen s.............................. 36
2.4.1 Neu on di ac ome e s . . . . . . . . . . . . . . . . . . . . . . . . . 36
2.4.2 X- ayde ices ............................... 41
2.5 Da a collec ion and educ ion . . . . . . . . . . . . . . . . . . . . . . . . . . 44
2.5.1 Wide angle neu on sca e ing . . . . . . . . . . . . . . . . . . . . . . 45
2.5.2 Small angle neu on sca e ing . . . . . . . . . . . . . . . . . . . . . . 51
2.5.3 Small angle X- ay sca e ing . . . . . . . . . . . . . . . . . . . . . . . 53
3 Li e a u e e iew 54
3.1 P e ious di ac ion s udies in ibe DNA . . . . . . . . . . . . . . . . . . . . 54
3.1.1 Con o ma ion o humidi ied ibe s. A and B o m DNA as seen by
neu onsca e ing ............................ 55
3.1.2 Con o ma ion o DNA ibe s subme ged in e hanol solu ions. The B-
o-A ansi ion .............................. 58
3.1.3 DNA ibe s subme ged in PEG solu ions. The osmo ic p essu e me hod
59
3.2 Con inemen o DNA............................... 60
2
3.3 Mel ing ansi ion................................. 63
3.3.1 E ec o he con inemen o DNA in he mel ing ansi ion . . . . . . 64
3.3.2 E ec o PEG in he mel ing ansi ion . . . . . . . . . . . . . . . . . 66
3.3.3 E ec o e hanol in he mel ing ansi ion . . . . . . . . . . . . . . . 67
3.4 Models o DNA and he mel ing ansi ion . . . . . . . . . . . . . . . . . . . 69
3.4.1 Pey a d-Bishop-Dauxois model . . . . . . . . . . . . . . . . . . . . . 69
3.4.2 K a ky-Po od model . . . . . . . . . . . . . . . . . . . . . . . . . . . 74
4 S udy o subme ged DNA ibe s 76
4.1 S uc u al cha ac e iza ion wi h X- ays . . . . . . . . . . . . . . . . . . . . . 76
4.2 Room empe a u e s udy wi h neu ons . . . . . . . . . . . . . . . . . . . . . 79
4.2.1 Fibe s subme ged in PEG solu ions . . . . . . . . . . . . . . . . . . . 79
4.2.2 Fibe s subme ged in e hanol solu ions . . . . . . . . . . . . . . . . . . 83
4.3 Mel ing ansi ion s udied by calo ime y . . . . . . . . . . . . . . . . . . . . 93
4.3.1 Fibe s subme ged in PEG solu ions . . . . . . . . . . . . . . . . . . . 93
4.3.2 Fibe s subme ged in e hanol . . . . . . . . . . . . . . . . . . . . . . . 100
4.4 S udy o he mel ing ansi ion wi h neu on sca e ing . . . . . . . . . . . . 105
4.4.1 Fibe s subme ged in PEG . . . . . . . . . . . . . . . . . . . . . . . . 105
4.4.2 Fibe s subme ged in e hanol . . . . . . . . . . . . . . . . . . . . . . . 120
5 Widom-601 in es iga ed by SAS 129
3

5.1 Room empe a u e s udy . . . . . . . . . . . . . . . . . . . . . . . . . . . . . 129
5.2 Tempe a u e-dependen s udy . . . . . . . . . . . . . . . . . . . . . . . . . . 146
5.2.1 SANS ................................... 147
5.2.2 SAXS ................................... 152
5.2.3 Discussion................................. 156
6 Conclusions 159
4
Chap e 1
In oduc ion
Deoxy ibonucleic acid (DNA) is a mac omolecule which ca ies he gene ic in o ma ion es-
sen ial o e e y li ing o ganism. I is a biopolyme buil by he epe i ion o monome s
called nucleo ides. Each nucleo ide consis s o a phospha e g oup, a suga g oup and a ni-
ogen base. The phospha e and suga g oups al e na e in sequence and o m a linea chain.
Two o hese chains a e linked by hyd ogen bonds be ween ni ogen bases gene a ing he
amous double helix. Each couple o linked ni ogenous bases is called a base pai .
The mel ing ansi ion ( he mally induced helix- o-coil ansi ion) o DNA is a i s o de
phase ansi ion induced in DNA molecules by hea . In such a p ocess he hyd ogen bonds
be ween base pai s b eak as he empe a u e is inc eased. Local openings o consecu i e base
pai s can occu a a empe a u e below he ansi ion esul ing in zones o open base pai s
(called dena u a ion bubbles) which a e su ounded by closed zones in which he double helix
is in ac . As he empe a u e is aised and mo e base pai s b eak, he open zones expand o
la ge sizes and e en ually he wo s ands o he double helix sepa a e. Fig. 1.1 illus a es
he p ocess.
The mel ing ansi ion o his li e-essen ial molecule has been hea ily s udied o lea n
abou he in amolecula in e ac ions, he impac o he base pai sequence in DNA unwind-
ing and he e ec o he sol en in DNA s abili y [2, 3, 4]. A be e unde s anding o he
5
Figu e 1.1: DNA openings as Tinc eases. Adap ed om [1].
ansi ion could ha e an immedia e impac in applica ions such as high esolu ion mel ing
analysis o polyme ase chain eac ions, which a e widely used in bio-labs a ound he wo ld
[5, 6]. Howe e , he mel ing o DNA i sel is in e es ing o s udy om a heo e ical poin o
iew since i is, essen ially, a phase ansi ion in a one dimensional sys em.
In his hesis, a be e unde s anding o he mel ing ansi ion o DNA and i s e ec s
in he unc ionali y o he molecule is a emp ed by ollowing wo a enues: i) he s udy
o highly o ien ed DNA ibe s wi h wide angle di ac ion echniques and calo ime y. ii)
he in es iga ion o a sho chain, biologically ele an , sequence wi h small angle sca e ing
echniques (SAS).
Highly o ien ed DNA ibe s
Expe imen ally, he ansi ion has been s udied wi h echniques ha ei he p obe he bulk
sample, like calo ime y, UV-Vis abso p ion and ci cula dich oism spec oscopy, o local-
ized poin s on he molecule, like luo escence spec oscopy. The spa ial s uc u e o DNA
molecules is no accessible using hese echniques, and he e o e, he dis ibu ion o open
and closed base pai s du ing he phase ansi ion can no be de e mined. Knowledge o
6
he spa ial co ela ions and how hey e ol e wi h empe a u e is necessa y o a comple e
unde s anding o he ansi ion.
Sca e ing echniques allow o access s uc u al in o ma ion and hus he spa ial co e-
la ions wi hin he molecule. Such in o ma ion is mo e easily accessible when he sample has
long- ange o de , which gi es ise o B agg peaks. DNA ibe s, in which he molecules a e
coaligned and a e close packed, ha e su icien long- ange o de o exhibi B agg peaks in
hei di ac ion pa e ns. By s udying hese peaks, he in o ma ion o in e es is collec ed
in a measu emen which is only weakly pe u bed by sample impe ec ions and incohe en
con ibu ions o he sca e ing.
The mel ing ansi ion o o ien ed DNA ibe s equilib a ed wi h a humid a mosphe e has
been p e iously s udied [7, 8] using neu on sca e ing. The esul s ha e been success ully
modeled wi h he mesoscopic s a is ical-mechanical Pey a d-Bishop-Dauxois (PBD) model
[9]. The e o e, hese wo ks we e able o access he spa ial co ela ions o he molecules
du ing he ansi ion and ein o ce he alidi y o he PBD model, which is al eady widely
used o desc ibe complex DNA dena u a ion cu es. Du ing he analysis, he ques ion o
whe he he con inemen o he DNA molecules in he ibe s has an e ec on he ansi ion
a ose. The es ic ed deg ees o spa ial eedom due o he con inemen o he molecules
could a guably ha e an impac on he in e p e a ion o he esul s since he model does no
accoun o in e molecula in e ac ions.
In o de o es he e ec s o he molecula con inemen , a new expe imen was designed
in which he ibe s we e subme ged in a solu ion wi h a gi en osmo ic p essu e. The osmo ic
p essu e me hod has been epo ed in nume ous a icles [10, 11]. I consis s o subme ging he
DNA ibe s in a saline solu ion wi h a high-molecula -weigh polyme such as polye hylene
glycol (PEG). I he PEG does no pene a e he DNA ibe s, he osmo ic p essu e ac s
analogously o a mechanical and pe meable pis on p e en ing DNA om dissol ing, hus
p ese ing he long- ange o de , while allowing wa e and sal o be exchanged be ween he
ibe s and he solu ion. X- ay di ac ion has p o ed ha ibe s equilib a ed wi h hese kind
o solu ions show a well-de ined in e axial dis ance be ween molecules, which inc eases wi h
7
Figu e 2.3: Pic u e o he inal ilms p oduced by he we spinning appa a us.
Subme ged ibe s
Na−and Li-DNA o ien ed ibe s subme ged in PEG solu ions made wi h 2H2O(hea y
wa e ) and e hanol/2H2Omix u es ha e been in es iga ed in his wo k using calo ime y,
X- ay and neu on sca e ing. Using hea y wa e is an ad an age when in es iga ing samples
wi h neu ons because i minimizes he incohe en sca e ing [12]. 2H2Owas used in he
samples s udied wi h o he echniques o consis ency. Since he chemical p ope ies o hea y
wa e and no mal wa e a e almos iden ical he ange o applica ion o he esul s is no
hinde ed by he use o hea y wa e .
The PEG solu ions we e made by dissol ing he speci ic amoun o PEG in a bu e made
wi h 2H2Owi h 10 mM T is ( is(hyd oxyme hyl)aminome hane), 1 mM EDTA (e hylene-
diamine e aace ic acid). Unless men ioned o he wise he solu ions con ained 0.1M NaCl
o samples made wi h Na-DNA and 0.1M LiCl o samples made wi h Li-DNA. The PEG
solu ions will be iden i ied by he amoun o PEG in weigh pe cen .
The e hanol/wa e mix u es we e p epa ed wi h he same bu e and will be iden i ied
by he amoun o e hanol in olume pe cen . Also, o he sake o simplici y he mix u es
will be add essed as e hanol solu ions. Fo he neu on samples ully deu e a ed e hanol was
used (e hanol-d6), o he o he echniques p o ona ed e hanol was used due o he cos o
14

e hanol-d6.
A speci ic sample o neu on sca e ing consis ed o a numbe o ilms wi h a o al DNA
mass close o 0.6g ha we e conce ina olded and s acked wi h hei axes coaligned. The
dimensions o he inal sample we e app oxima ely 2.5×2.5×0.2cm3. The DNA was placed
in a niobium en elope which in u n was placed inside an aluminum casse e. The niobium is
necessa y since he DNA can eac chemically wi h aluminum a high empe a u es. A ound
0.8ml o a gi en PEG o e hanol solu ion was degassed and placed in he casse e so he DNA
was o ally subme ged. Then he casse e was sc ewed closed and sealed wi h a lead-wi e
gaske .
2.1.2 Widom-sequence
The sho DNA sequence chosen o he small angle sca e ing expe imen s desc ibed in his
documen is he so called Widom-601 sequence. I has g ea a ini y o bind a ound p o ein
his one oc ame s and i is called a s ong posi ioning sequence. I was disco e ed by Lowa y
and Widom [19]. I has 145 base pai s wi h a o al leng h o a ound 485 ˚
A. Fig. 2.4 p esen s
he p ima y s uc u e o he sequence wi h he binding si e highligh ed in ed.
The a i icial DNA needed o he expe imen s was syn hesized by collabo a o s in he
ICCRAM a he uni e si y o Bu gos, Spain (Ma a Ma y Roda, Lo ena Rome o San ac eu),
and in he INMG a he uni e si y o Lyon, F ance (Ramachand an Boopa hi, Dimi a
Angelo ). The exac p o ocol di e ed sligh ly om one lab o ano he bu a gene al summa y
Figu e 2.4: The 145 base-pai sequence co esponding o he NCP-601 nucleosome in es i-
ga ed in [13] also known as Widom-601 sequence. The agmen highligh ed in ed is he
s ong posi ioning elemen cha ac e is ic o his sequence.
15
is p esen ed below.
The s a ing ma e ial was a solu ion o plasmid pGEM-3z/601 pu chased om Addgene,
which con ains he Widom sequence. A polyme ase chain eac ion (PCR) was pe o med
wi h he p ope p ime s in o de o duplica e he Widom sequence. A e enough dupli-
ca ions, he esul was p ocessed wi h a pu i ica ion column ki (Gene Ma ix Basic) o
sepa a ing he Widom sequences om he emanen plasmid. PCR alone is no an op imal
me hod o ob ain he quan i ies o DNA needed o neu on sca e ing (in he o de o he
mg) bu he amoun o widom-DNA ou o he i s PCR allowed o use ano he mul iplica-
ion echnique, called compe en cells. In cell biology, compe ence is de ined as he abili y o
a cell o ake ex acellula DNA and inco po a e i in i s i al cycle, including ep oduc ion.
Thus, o ep oducing a gi en sequence which has been assimila ed by a cell cul u e i is
su icien o allow he cell cul u e o g ow. Cells will no assimila e a sho sequence such
as he Widom-601 in his way bu hey can assimila e and mul iply a plasmid including
he Widom sequence. The e o e he Widom DNA om he i s PCR and pu i ica ion was
used in a liga ion p ocess wi h ligase T4 in which plasmids pGEM/3z-601 we e e o med.
The plasmids we e in oduced in compe en cells DH5α. A e adequa e g owing ime he
plasmids we e ex ac ed om he cells by GeneJET Plasmid Minip ep Ki om The mo
Scien i ic. Finally, epea ing he PCR and column pu i ica ion s a ed abo e and pe o m-
ing u he pu i ica ion using e hanol/chlo o o m/ enol ex ac ion as well as p ecipi a ion
ia cen i uga ion allowed he desi ed quan i ies o Widom-sequence DNA molecules o be
ob ained.
2.2 Di e en ial scanning calo ime y
Di e en ial scanning calo ime y (DSC) is a he mo-analy ical echnique designed o gauge
he change in speci ic hea o a sample as a unc ion o empe a u e. Many he modynamical
quan i ies may be calcula ed om calo ime y da a including ansi ion en halpies, mel ing
empe a u es, speci ic hea and ee ene gy. Apa om he e e ences speci ically highligh ed
16
in he ex , gene al in o ma ion o he elabo a ion o his sec ion has been collec ed om
he book by Hohne [20].
2.2.1 The modynamical p inciples
A gi en con o ma ional o phase ansi ion can be desc ibed by he change in he he -
modynamical p ope ies: in e nal ene gy (∆U), en halpy (∆H), Gibbs ee ene gy (∆G),
Helmhol z ee ene gy (∆F) and en opy (∆S). When he p essu e is cons an he en halpy
is a quan i y equi alen o he o al hea con en o a sys em. The en opy ep esen s he
amoun o ene gy in a sys em which is una ailable o pe o ming wo k. I also is unde s ood
as he deg ee o diso de wi hin he sys em [21, 22].
I he p essu e is kep cons an he di e ence in en halpy and en opy du ing a ansi ion
induced by a change in empe a u e can be calcula ed om he speci ic hea (Cp):
(∆H)p=ZT2
T1
CpdT (2.1)
(∆S)p=ZT2
T1
Cp
TdT (2.2)
Whe e he speci ic hea is de ined as he amoun o hea pe uni mass needed o aise
he empe a u e o he sys em by one deg ee a cons an p essu e.
2.2.2 DSC echnique
The e a e wo ypes o DSC expe imen s: he powe -compensa ed DSC; and he hea lux
DSC which is he echnique o choice o he p esen wo k. In a hea lux di e en ial scanning
calo ime e wo he mally isola ed cells, one o he sample unde s udy and ano he o he
e e ence, a e placed in a u nace connec ed o a hea e . I he empe a u e o he u nace is
aised he empe a u e o he sample and he e e ence cell will di e because hey con ain
17
samples wi h di e en Cp. The di e ence in empe a u e ela es o he di e en ial hea lux
h ough Ke, he hea exchange coe icien o he u nace: ∆P=Ke∆T.Kecan be ob ained
wi h a calib a ion using a ma e ial o well known he mal p ope ies.
The di e en ial hea capaci y o he sample wi h espec o he e e ence can be exp essed
in unc ion o he di e en ial hea lux (de i a ion can be ound in [23]):
∆Cp=−∆P
β−τins
d(∆P)
dT (2.3)
whe e β=dT0
d is he scanning a e o he expe imen (T0is he u nace empe a u e) and
τis he so called he mal ime cons an o he calo ime e [24]. This cons an is ela ed wi h
he he mal lag o he se -up o he ins umen and can be app oxima ed by con olling he
ime i akes o he ins umen o espond o a swi powe change.
Figu e 2.5 is an example o a calo ime y scan p esen ing hea lux (J/s) as a unc ion
o empe a u e du ing a hea ing amp. I he sample does no unde go a physico-chemical
ansi ion in a gi en ange o empe a u es hen he hea lux in o he sample is cons an in
his ange. On he con a y, when a he mal p ocess akes place wi hin he sample he hea
lux changes and he sign o his change depends on whe he he p ocess is exo he mic, like
he c ys alliza ion ansi ion o he igu e, o endo he mic, like he mel ing. In he o me
case hea is p oduced by he sample du ing he ansi ion and so a lowe hea lux is going
in o he sample. The opposi e is ue o he la e case.
2.2.3 Ins umen s
The di e en ial scanning calo ime e used o collec ing he da a o he ibe samples o he
p esen wo k was a Mic oDSC III om Se a am ins umen a ion. I has wo 1 ml olume
Has elloy C (Nickel and Ch omium alloy) cells, he sample cell and he e e ence. The
cells a e placed in highly conduc i e ubes, he mally isola ed om each o he and om he
ou side en i onmen . The mocouples a e ixed o he ubes o empe a u e measu emen .
18
Figu e 2.5: Example o di e en ial scanning calo ime y scan. Th ee di e en ansi ions
can be obse ed: a glass ansi ion, a c ys alliza ion and a mel ing. ep oduced om [25].
Figu e 2.6: Mic oDSC III om Se a am ins umen a ion company. Rep oduced om [27].
Du ing a scan bo h cells a e subjec ed o a empe a u e amp. Cons an ci cula ing oluene
allows o a e y p ecise empe a u e s abili y. The cooling is achie ed h ough an ex e nal
s abiliza ion wa e ba h which was kep a 27 ◦C o all expe imen s. The empe a u es
anged om oom empe a u e o 120 ◦C and he p og ammable scanning a e is 0.001
o 1.2◦C/min. The he mal ime cons an (τins) as p o ided by he manu ac u e is 60 s
[26, 27].
A sample o dissol ed DNA was measu ed in a di e en calo ime e om he es o sam-
ples (a Nano DSC III om Calo ime y Sciences co p.) due o sensi i i y easons. The DNA
concen a ion o he dissol ed sample was 2 mg/ml and he olume o solu ion measu ed
was 0.33 ml. The wo king p inciple o his calo ime e is he same as o he Mic oDSC
III and he me hods used a e iden ical. The sample was measu ed by He ´e Guillou in he
19

Ins i u N´
EEL, G enoble, F ance.
2.2.4 Expe imen al p o ocol
Mos o he calo ime y wo k pe o med o he hesis was on samples o highly o ien ed ibe
Na/Li-DNA subme ged in PEG solu ions o e hanol/2H2Omix u es desc ibed in 2.1.1. Fo
he sake o con enience he liquid in which a gi en ibe sample was subme ged would be
e e ed o simply as solu ion in his sec ion.
In a ypical expe imen he DNA amoun unde s udy was a piece o ilm ha weigh ed
a ound 25 mg when d y. The solu ion used o he expe imen was degassed using ul asound
o 20 min and hen 0.5ml was used o subme ge he DNA. The degassing minimized he
quan i y o bubbles in oduced du ing he p ocess since hey may inc ease he noise o he
signal o gene a e uns able baselines [28]. The DNA was le o equilib a e wi h he aqueous
medium o a ound a week be o e being measu ed.
The scanning a e βwas ixed a 1 ◦C/min o all he expe imen s. Inc easing i o 1.2
◦C/min o dec easing i o 0.5 ◦C/min made no signi ican di e ence in he da a eco ded.
Be o e he DNA sample was measu ed, a ”solu ion e sus solu ion” scan was pe o med
whe e 0.5ml o degassed bu e was place in bo h sample and e e ence cell. The he mal
p og am o hese scans consis ed o successi e cycles o hea ing and cooling om oom
empe a u e o a ound 110 ◦C. The calo ime ic cu e e ol es du ing he i s cycles bu
e en ually s abilized o a cons an alue o a ound ze o. The ins abili y o he cu e in he
i s scans is a well known ins umen al a i ac ela ed o he ac ha he e is a na u al
ins umen al baseline o a pa icula se o scan condi ions which disappea s a e se e al
hea ing cycles [29]. The cu e o he hea ing amp o he las cycle was ep oducible and i
was aken as he e e ence cu e o he DNA sample and used in he da a analysis. Thus,
exac ly he same condi ions o he solu ion-solu ion scan mus be used o he sample in
o de o a oid he eappea ance o his a i ac .
20
A e he e e ence cu e was ob ained he sample (DNA+solu ion) was in oduced in
he sample cell and he DNA mel ing expe imen was launched, wi h he same 0.5ml o
bu e in he e e ence cell. Since app oxima ely he same amoun o bu e (0.5ml) is in
bo h cells, ea u es in he inal cu e could be asc ibed only o he in e nal DNA o he
DNA-bu e in e ac ions.
2.2.5 Da a analysis
The aw ou pu da a o a hea lux DSC de ice is a cu e o di e en ial hea lux in powe
uni s e sus empe a u e (∆P(T)), c. . ig. 2.5. The aim o his subsec ion is o explain how
o use hese da a o calcula e he modynamical quan i ies ha a e ele an o cha ac e ize
a ansi ion. Quan i ies o choice a e he mel ing (o dena u a ion) empe a u e, he wid h
o he ansi ion, and he ac ion o open base pai s. The inal me hodology used o da a
analysis as well as mos o he con en o his sec ion ha e been hea ily based on se e al
wo ks o Cha les H. Spink [29, 30].
The e e ence cu e was sub ac ed om he measu ed ∆P(T). Then ∆P(T) can be
con e ed o ∆C(T) in J/◦C ia eq. 2.3. The di e en ial hea capaci y pe uni mass
(J/g◦C) can be ob ained by:
∆c(T) = ∆C(T)
mDNA
(2.4)
whe e mDNA is he mass o he DNA in he sample cell. The esul ing cu e usually
has a single peak o e a s aigh -line baseline. Tmin and Tmax a e espec i ely he minimun
and maximum empe a u es o he scan. Be o e u he ea men a baseline was de ined
as he connec ion line be ween ∆c(Tmin) and ∆c(Tmax) and hen sub ac ed om he da a.
This cu e could be i ed wi h a Gaussian unc ion and so he ull wid h a hal maximum
(FWHM) could be de e mined. This pa ame e was aken as he wid h o he ansi ion.
The di e en ial hea capaci y allows he calcula ion o he ac ion o base pai s which
21
Figu e 2.7: Example o da a educ ion and analysis pe o med on he calo ime ic cu e o
a sample o Na-DNA subme ged in a PEG solu ion. Le y-axis: ∆cin blue, Gaussian i
o he da a in ed and baseline in g een. Righ y-axis: F ac ion o open base pai s in black.
The mel ing empe a u e is highligh ed.
ha e opened a a gi en empe a u e: SS, whe e SS s ands o single s and. SS(T) was
calcula ed as done in [31] wi h he equa ion:
SS(T) = (∆H)n(T)
∆H(2.5)
Whe e (∆H)n=RT
Tmin ∆Cp(T)dT is called he cumula i e en halpy a empe a u e T.
Once he ac ion o open base pai s is known he ac ion o base pai s which a e closed a
a speci ic empe a u e is calcula ed as:
DS(T) = 1 − SS(T) (2.6)
whe e DS s ands o double s and. The mel ing empe a u e, Tmis he empe a u e a
which hal o he base pai s a e open so i is he empe a u e o which DS = 0.5.
Figu e 2.7 summa izes he da a analysis desc ibed in his sec ion. The igu e shows a
model example o ∆c(T), he i wi h a Gaussian unc ion, he s aigh -line baseline and he
22
calcula ed ac ion o open base pai s.
All he calo ime ic da a p esen ed in he esul chap e s o his wo k a e ob ained by
measu ing h ee iden ical samples and a e aging he esul s. The e o ba s shown a e he
s anda d de ia ion o he h ee measu emen s.
2.3 In oduc ion o sca e ing heo y
The heo e ical and expe imen al desc ip ions in his sec ion will co e only he echniques
used o his wo k. Thus, no inelas ic sca e ing is men ioned, nei he he spin o magne ic
con ibu ions o he sca e ing a e p esen ed. In o ma ion o his sec ion was collec ed om
he books by Si ia [32] and Squi es [33].
2.3.1 Basic p inciples o a sca e ing expe imen
In a sca e ing expe imen mos o he in o ma ion abou he sys em is ex ac ed om he
change o momen um and ene gy o he sca e ed pa icles wi h espec o he inciden
pa icles. The momen um change is desc ibed ma hema ically by:
~
Q=~
ki−~
k (2.7)
whe e ~
Qis he momen um ans e (also called sca e ing ec o ), ~
kiand ~
k a e he ini ial
and inal wa e ec o s o he sca e ed pa icle. The wo k desc ibed in his documen is based
in elas ic sca e ing in which Ei=E , so ki=k =2π
λ, whe e λis he wa eleng h o he
inciden pa icles. The ec o diag am o an elas ic sca e ing e en is shown in ig. 2.8
whe e an incoming pa icle is de lec ed h ough an angle o 2θ. T igonome y hen leads o
he esul :
23
(a) (b)
Figu e 2.11: a) Usual geome y o DNA ibe di ac ion. b) Schema ic o he cons uc ion o
he laye -lines in he X- ay di ac ion pa e n o a linea a ay o poin sca e e s. RL s ands
o eal la ice; ES o Ewald sphe e; CA o cone axis; LP o laye -planes; S o obse a ion
sc een; BS o beam s op and; LL o laye lines. Adap ed om [34].
molecule a e aligned along a egula ci cula helix. The ull gene al heo y o calcula ing
he o m ac o o a helix was published by Coch an, C ick and Vand [37] and is summa ized
wi h he CCV o mula.
This o mula compu es he sca e ing ampli ude o a con inuous helix o adius Rand
pi ch P, o such a sys em he cylind ical coo dina es ~ j= (ρj, ϕj, zj) o iden ical a oms
placed a axial in e als pacan be de ined wi h ela ion o an a bi a y a om aken as he
o igin (R, ϕ0, z0). The s ep-by-s ep de i a ion can be ound a [37] and he o mula is:
A(~
Q) = 2π
P (Q)X
n,m
Jn(Q R)ein(Qϕ−ϕ0+pi/2)e(Qzz0)δ(Qz−n2π
P−m2π
pa
) (2.16)
whe e ~
Q= (Q , Qϕ, Qz) in cylind ical coo dina es and Jn(x) is he cylind ical Bessel
unc ions o in ege o de n.
30

The δ- unc ion in eq. 2.16 makes i clea ha he di ac ion pa e ns will s ill be o ga-
nized in laye lines. The δ- unc ion imposes he selec ion ule:
l
Pa
=n
P+m
pa
(2.17)
Wi h his selec ion ule he δ- unc ion can be ew i en and i can be concluded ha
non-ze o in ensi y will be seen a Qz= 2πl/Pa.
Thus he sca e ing pa e n o a phospho ous helix in a single s and DNA backbone can
be calcula ed wi h eq. 2.16 se ing Pa=P= 10pa= 34 ˚
A−1and R= 10 ˚
A−1. The esul
can be seen in ig. 2.12 ep oduced om [34]. The igu e shows a e y cha ac e is ic c oss
pa e n.
The selec ion ule o his sys em is hen l=n+ 10m. As an, example he selec ion ule
gi es (n= 0, m = 0) (i.e. J0) as leading e m in he di ac ion ampli ude o he equa o ial
line (l= 0). Fo he l= 1,2,3,4,5 he equa ion selec s as leading e ms (1,0), (2,0), (3,0),
(4,0), (5,0). Keeping in mind ha nis he o de o he Bessel unc ion he c oss pa e n o
he i s i e lines can be explained. Mo eo e he same selec ion ule imposes he epea o
he c oss pa e ns along he di ec ion o he axis o he helix e e y en laye -lines. This c ea es
a diamond pa e n in he di ac ion pic u e wi h he in e io o he diamond app oxima ely
emp y o in ensi y. These diamonds a e cha ac e is ic o an helical dis ibu ion o ma e in
he di ac ing objec .
In o de o complemen his heo e ical in oduc ion o ibe di ac ion, wo e y impo -
an esul s will be commen ed. They will allow he main di e ences be ween he seconda y
A and B o m o DNA o be highligh ed, which will be signi ican ly impo an o he dis-
cussion o u u e chap e s.
Fig. 2.13 show di ac ion diag ams o Na-DNA ibe s. The measu emen s we e made
wi h a geome y simila o ha shown in ig. 2.11a. The ibe comp ises a mac oscopic
numbe o long, pa allel DNA molecules, Na+ions and wa e molecules. The ca ions and
31
Figu e 2.12: Simula ed di ac ion pa e n by an a omic phospho us helix. Rep oduced om
[34].
he wa e a e in amo phous s a e and gi e only di use sca e ing. Fig. 2.13a shows he
pa e n classically associa ed wi h he A- o m o DNA, Fig. 2.13b he one associa ed wi h
he B- o m.
A e he disco e y o hese wo o ms o DNA i was p o ed ha he ansi ion be ween
A o B o m is e e sible [39, 40]. In hese wo ks he wa e con en o a sample was modi ied
be ween wo s a es. The d ie s a e o he sample ga e pa e n A and was in e p e ed
as c ys alline, wi h long ange o de , due o he sha p spo s specially close o he cen e .
The we e s a e o he sample ga e pa e n B and due o i s b oade ea u es was called
semyc is alline and was conside ed o ha e less long ange o de due o he diso de ing e ec
o he inc eased amoun o wa e su ounding he molecules.
Bo h pa e ns a e o ganized in egula ly spaced laye -lines as expec ed om long molecules
ha ing a epea ing s uc u al uni ( he base pai ). The d ama ic change o he ea u es be-
ween pa e ns was in e p e ed no only as a change in he long ange a angemen o he
sample bu as a change in he in e nal s uc u e o he DNA molecules. This is why he
DNA is said o adop di e en con o ma ions depending on he en i onmen al condi ions.
The disco e y o A and B o m was ollowed by many o he con o ma ions such as C, D,
Z...[41].
The B- o m is belie ed o be he con o ma ion o ch omosomic DNA in i o and will be
32
(a) (b)
(c)
Figu e 2.13: X- ay ibe di ac ion pa e ns o a) A-DNA, b) Semyc is alline B-DNA. Re-
p oduced om [34] and c) C ys alline B-DNA ep oduced om [38].
33
he ocus o he p esen wo k. I s pa e n is quali a i ely e y simila o ig. 2.13, showing
he helical s uc u e o he molecule. The e lexion o he 10 h laye line o his o m will be
ins umen al in he s udy o he mel ing ansi ion in DNA ib es.
Soon a e he disco e y o he B- o m i was p o en ha his e lexion was ela ed
wi h a nucleo ide epea o 3.4˚
A−1[42]. This e lec ion was modeled as he esul o a
conca ena ion o la nucleo ides (e en hough in eali y he suga and ni ogenous base do
no lie in he same plane) s acked on op o each o he and co alen ly linked o he phospha e
backbone. The bases sca e cohe en ly despi e being i egula in hei chemical composi ion
and geome ical s uc u e because hey beha e like hin sca e ing slabs seen edge-on by he
inciden beam (pe pendicula o he ibe ). In summa y he s acked base pai s ac somewha
like a pa allel sli g a ing o p oduce he la ge 10 h laye e lec ions.
Since he B-pa e n shows en laye -in e als sepa a ing he cen e om his e lexion i
ollows ha in his con o ma ion he pi ch o he DNA is 34 ˚
A−1. The c oss pa e n in he
cen e o he pic u e is he second s onges ea u e, i is, as s a ed abo e, a oo p in o he
helical con o ma ion o he DNA backbone. A las c ucial piece o in o ma ion ha can be
ex ac ed easily om he B-pa e n is he adius o his o m (≈10 ˚
A−1), which is pa en
due o he dis ance be ween he equa o ial e lec ions.
Fig. 2.13c shows a pa e n e y simila o ig. 2.13b bu he blu ed e lec ions a e
subs i u ed wi h sha p poin s and lines which indica es bo h samples a e in he same con o -
ma ion bu he o me has be e c ys alline o de . Because o his, pa e ns like ig. 2.13b
a e usually said o ela e o he ”semic ys alline” B- o m and pa e ns like ig. 2.13c a e
ela ed o he c ys alline B- o m.
The A- o m has 11 nucleo ides pe pi ch wi h an a e age dis ance be ween base pai s o
2.56 ˚
A. The emo al o wa e wi h espec o he B- o m con ac s he molecule along i s
axis and, he base pai s become inclined wi h espec o he ho izon al plane (wi h a il
angle as la ge as 20◦). The e ec o his il is ha mos o he base pai s a e no seen
edge-on by he inciden beam and hus hey no longe ac as a ho izon al sli g a ing. The
base pai s acking no longe gi es a s ong e lexion on he 10 h laye bu wo pai s o smea
34
e lexions appea on he six h, se en h and eigh h laye lines which a e some imes e e eed
o as o -axis B agg peaks.
2.3.5 Small angle sca e ing
When s udying he sca e ing om a conglome a e o a oms, he cha ac e is ics will depend
on he spacial dis ibu ion, numbe and (λ, θ) pa ame e s o he a oms. The spacial dis-
ibu ion weigh ed by he (λ, θ) o each a om can be quan i ied by he so called sca e ing
leng h densi y unc ion, β. The sca e ing leng h densi y a a posi ion ~ in a sys em is gi en
by: β(~ ) = ρ(~ )¯
(λ, θ)(~ ) whe e ρ(~ ) is he local a omic numbe densi y and ¯
(λ, θ)(~ ) is
he mean sca e ing leng h which a ies as a unc ion o a om and iso ope o neu ons and
as he Thomson sca e ing leng h imes he local numbe o elec ons o X- ays [43]. Then
a con inuum gene aliza ion o he disc e e case o eq. 2.14 can be made:
(dσ
dΩ)el ∝N
Vh|ZZZV
β(~
R)ei~
Q•~
Rd3~
R|2iΘ(2.18)
whe e he sys em con ains Npa icles in a olume o Vand he angula b acke s indica e
an ensemble a e age o e all he o ien a ions o he pa icles.
As men ioned p e iously (sec. 2.3.3), he di e en ial c oss sec ion equa es he Fou ie
ans o m o he sca e ing leng h densi y o he sample. A basic p ope y o Fou ie ans-
o ms is he in e se ela ionship be ween leng h scales in eal, ~ , and ecip ocal space, ~
Q.
Thus expe imen s ocusing in small Q anges p o ide low esolu ion s uc u al in o ma ion
bu a e op imal o s udying he con igu a ion o mac omolecules in he mesoscopic scale
(such as sho DNA chains). Equa ion 2.8 demons a es ha low-Q expe imen s should
p io i ize measu emen s a small θs and use la ge λs. Small di ac ion angles a e eached
by ha ing a long ligh -pa h be ween sample and de ec o .
Many small angle sca e ing expe imen s a e pe o med on solu ions so he sample con-
sis s o Nobjec o in e es placed wi hin he sol en . The small angle sca e ing (SAS)
35

expe imen s desc ibed in he p esen wo k we e pe o med on a dilu e solu ion o sho chain
DNA molecules so he objec s o in e es we e Nisola ed molecules iso opically o ien ed
and andomly loca ed wi hin he sample. Unde hese ci cums ances equa ion 2.18 educes
o a one dimensional in eg al:
dσ
dΩ∝Zdmax
0
P( )sin(Q )
Q d (2.19)
whe e dmax is he longes dimension o he sca e ing objec . P( ) is he pai -dis ibu ion
unc ion. I ep esen s he a e age o he shapes o he sca e e s in he solu ion. P( ) is
usually calcula ed by he in e se Fou ie ans o m o he c oss sec ion and i will be essen ial
o he in e p e a ion o he SAS da a in he p esen wo k.
2.4 Di ac ion Ins umen s
In his sec ion an o e iew will be p esen ed abou he ins umen s used o he collec ion
o da a in his wo k.
2.4.1 Neu on di ac ome e s
IN3
IN3 is a h ee-axis spec ome e a he ILL (F ance), i was used o sample cha ac e iza ion.
This echnique p o ides access o he sca e ing unc ion S(Q, w) in a la ge olume o he e-
cip ocal space. Howe e , only elas ic measu emen s we e pe o med. Th ee-axis ins umen s
ha e a mobile o a ional axis a bo h he sample and analyze posi ions. The di ec ion o
he ini ial and inal wa e ec o s wi h espec o he sample is de ined by he angles o each
axis. Any combina ion o kiand k can be selec ed as long as he ec o iangle ~
ki−~
k =~
Q
can close.
36
Figu e 2.14: Scheme o he h ee axis spec ome e IN3 a he ILL. Rep oduced om he
ILL websi e.
Fo he expe imen s p esen ed in his documen a PG(002) monoch oma o was used
deli e ing a λ= 3.3545 ˚
A−1, ano he PG(002) c ys al was used as analyze , 400collima ion
was used be o e and a e he sample posi ion and a PG il e was placed be o e he sample o
il e high o de con amina ion. The measu emen s we e pe o med in ecip ocal ˚
Angs ¨oms
(˚
A−1) wi h an o hogonal co-o dina e sys em.
D16
The di ac ome e D16 a he ILL is used o small angle sca e ing, powde di ac ion and
single c ys al s udies. I uses a py oli ic g aphi e monoch oma o , a be yllium il e , wo se s
o sli s o inciden beam collima ion (one jus a e he monoch oma o and ano he jus
be o e he sample) and a squa e 3He de ec o o a ea 320 ×320 mm2. Fig. 2.15 p esen s a
schema ic o he ins umen . This ins umen was used o he collec ion o ecip ocal space
maps o s uc u ally cha ac e ize he high o ien ed DNA ibe s in PEG and e hanol solu ions
a oom empe a u e. The wa eleng h was se o 4.5 ˚
A and he sca e ing om each sample
was eco ded in wo di e en o ien a ions: wi h he ibe axis pa allel and pe pendicula o
he sca e ing plane. The i s o ien a ion allows o s udy pe iodic o de in he sample along
37
Figu e 2.15: Scheme o he di ac ome e D16 a he ILL. Rep oduced om he ILL websi e.
he ibe axis and he la e o ien a ion gi es in o ma ion abou he la ice spacing o he
sample in he di ec ion pe pendicula o he ibe axis. A cylind ical piece o anadium, o
leng h simila o he sample, was measu ed o e e y de ec o posi ion o accoun o he
e iciency o he de ec o .
D19
D19 is a he mal di ac ome e a he ILL, specially designed o s udying la ge s uc u es
and ibe s. D19 was con igu ed wi h a g aphi e monoch oma o deli e ing an inciden wa e-
leng h o 2.4 ˚
A. The monoch oma o -sample dis ance was 3.18 m. P e-sample collima ion
and beam size we e de ined wi h wo se s o squa ed sli s (12×12 mm2) and a ci cula ape -
u e (diame e o 10 mm). The sli s we e a 1.51 mand 2.49 m om he monoch oma o .
The ci cula ape u e was a 3.1m om he monoch oma o . High-o de B agg con ami-
na ion was elimina ed by using a g aphi e il e . D19 has a 120◦posi ion-sensi i e de ec o
which was ixed h oughou he expe imen . The e was no collima ion be ween sample and
de ec o . Fig. 2.16 p esen s a scheme o he ins umen . A cylind ical piece o anadium,
38
Figu e 2.16: Scheme o he D19 di ac ome e a he ILL. Rep oduced om he ILL websi e.
o leng h simila o he sample, was measu ed o e e y de ec o posi ion o accoun o he
e iciency o he de ec o .
This ins umen was used o s udy he di ac ion pa e n o samples o ibe DNA
subme ged in PEG solu ions and e hanol-d6/2H2Omix u es as a unc ion o empe a u e
h ough he mel ing ansi ion. Recip ocal space maps wi h he ibe axis wi hin he sca -
e ing plane we e collec ed a se e al empe a u es be ween 20 ◦C and 110 ◦C.
The s abiliza ion ime be ween measu emen s when he empe a u e was changed was
15 min. On his ins umen wo di e en sample en i onmen s we e used:
a) Fo he ibe s subme ged in PEG 6000 a 17% (w/w) wo hea e s we e a ached o
opposi e e ices o he squa e casse e. A oom empe a u e he empe a u e s abili y was
a ound 0.2 ◦C bu he mal oscilla ions inc eased wi h empe a u e. Close o he mel ing
empe a u e o his sample (≈95 ◦C) he s abili y was a ound ±1◦C.
b) Fo he e hanol samples he sample en i onmen was a cylind ical aluminum chambe
wi h a low o he malized ai . S abili y o he sample empe a u e du ing he measu emen
was <0.1◦C o e he en i e empe a u e ange.
39
The i s s ep in he analysis was o educe he aw da a o ecip ocal space maps. I was
assumed ha he mos con enien way o p esen ing such maps was by de ining a sys em
o ecip ocal coo dina es wi h e e ence o he sample casse e. Such a e e ence sys em has
been used in p e ious a icles ([31],[45]). As p esen ed in ig. 2.21 he momen um ans e
ec o ~
Qcan be exp essed as ~
Q= ( ~
QH+~
QK+~
QL) whe e ~
QHis pa allel o he axis o he
DNA ibe s, ~
QKis pe pendicula o he axis and o he ace o he casse e, las ly ~
QLis
o hogonal o he p e ious wo.
In o de o p esen he aw da a in e ms o QH,QKand QLeach de ec o image was
i s no malized o moni o and di ided by he anadium da a co esponding o he same
de ec o posi ion (de ec o e iciency co ec ion). In eg a ing o e he heigh o he de ec o
ga e a map o in ensi y as a unc ion o ωand 2θ o each de ec o posi ion, an example
can be seen in ig. 2.22a. In he case o D16 he di e en maps o each de ec o posi ion
we e assembled oge he and in he pa s in which wo maps o e lapped in he 2θ-ωspace
an a e age was aken as he ep esen a i e sca e ed in ensi y ( ig. 2.22b).
The ”ω-2θ” maps in ig. 2.22 p esen a clea ly no na u al dip in he in ensi y whose
posi ion e ol es linea ly wi h 2θ. I is an a i ac due o he sel a enua ion o he sample
when he sca e ing angle o he de lec ed neu ons is so ha hei di ec ion is in he plane
o he casse e. The da a mus be co ec ed o his. In o de o do so he ansmission
ac o o he sample was calcula ed using:
T(ω, 2θ) = 1
AbZxZy
e−µ (x,y,ω,2θ)dxdy ×1
cos ω(2.20)
whe e Tis he ansmission ac o , µis he linea a enua ion coe icien , Abis he a ea
o he inciden beam and is he pa h leng h o a gi en se o neu ons h ough he sample
in unc ion o ω, 2θand (x,y) which is he poin in he sample a which he sca e ing e en
occu ed wi h e e ence o an a bi a y o igin in one o he e ices o he sample ( ig. 2.23).
The aco 1/cos ωwas included o accoun o he oo p in o he beam on he sample as
he sample a a ed. Since he linea a enua ion ac o o he sample is no known, µwas
i s ly app oxima ed by he linea a enua ion ac o o 2H2Oand hem adjus ed sligh ly o
46

(a)
(b)
Figu e 2.21: a) and b) Schema ic o he ecip ocal coo dina e sys em de ined wi h espec
o he DNA ibe axis. ~
QHis pa allel o he ibe axis, ~
QKis pe pendicula o he ibe
axis and o he ace o he casse e, ~
QLis o hogonal o bo h ~
QHand ~
QK.~
QSP is in he
sca e ing plane and i ma ches ~
QHin he longi udinal o ien a ion and ~
QLin he a e sal
o ien a ion.
47
(a) D19 (b) D16
Figu e 2.22: Sca e ed in ensi y as a unc ion o ω(sample o a ion) and 2θ o Na-DNA
subme ged in a PEG 6000 solu ion a as measu ed a oom empe a u e on a) D19 and b)
D16.
he esul o ma ch he a enua ion obse ed in he expe imen al da a.
An example o pa o he calcula ion will be p esen ed he e. The in eg al was di ided
in o di e en cases so ha in each case he ajec o y o he neu ons, , is de ined as a single
unc ion o x,y,ωand 2θ. The simples case assumes ha θ1<0 and θ1< θ2< θmax whe e
θmax =a an(w−Bw
2d), as is highligh ed in ig. 2.23. Unde hese assump ions e e y possible
pa h o he sca e ed neu ons h ough he sample en e s i by he ace A, lea es he sample
by ace Cand he pa h leng h can be desc ibed as:
=d−y
cos θ1
+y
cos θ2
(2.21)
Then Tis compu ed wi h eq. 2.20 wi h he limi s o he in eg a ion in xbeing (w−
Bw)/2< x < (w+Bw)/2 and in ybeing 0 < y < d.
Fig. 2.24 shows an example o he esul o he co ec ion o bo h a single alue o ω
and he comple e ω-2θmap.
The co ec ed in ensi y map was hen ans o m o he QH-QKspace o he da a o
he longi udinal o ien a ion ( ibe axis wi hin sca e ing plane) o he QL-QKspace o
48
Figu e 2.23: Geome y o he calcula ion o he ansmission ac o T.θ1=ω+ ∆θand ∆θ
is an ins umen al o se . wis he wid h o he sample, dis he hickness o he sample. Bw
is wid h o he neu on beam. The cen e o he neu on beam is supposed o go hough he
middle o he sample in he on ace. θmax is a limi o θ2in he example o he calcula ion
o Tand i is desc ibed in he ex .
(a) (b)
Figu e 2.24: a) Example o ω-2θmap a e he sel a enua ion co ec ion. b) In ensi y s. 2θ
o he aw da a (blue), sel -a enua ion co ec ed da a (black) and alue o he ansmission
ac o , T0, ( ed) o a gi en omega alue.
49
Figu e 2.25: Diag am o he sca e ing geome y ela ing he coo dina es ωand 2θ o he
QH-QKspace. In he case o he ans e sal o ien a ion he diag am would be iden ical and
QHwould be eplaced wi h QL.
he ans e sal o ien a ion ( ibe axis no mal o he sca e ing plane). This is done by
ans o ming he ω-2θspace using he equa ions:
QH,L =k(sin ω+ sin(2θ−ω))
QK=k(cos ω−cos(2θ−ω))
(2.22)
whe e k= 2π/λ. These equi alences a e appa en when ollowing he sca e ing geome y
o ig. 2.25.
The inal ecip ocal maps o bo h o ien a ions can be seen in ig. 2.26. The sligh d op
in he in ensi y which is obse able in he uppe le co ne o ig. 2.26a p o es ha he
a enua ion co ec ion is no pe ec . Since such ma ginal de ec is ela i ely a away om
he ea u es o in e es ed s udied in his wo k i can be easonably assumed ha i s e ec in
he in e p e a ion o he da a is negligible.
Be o e in e p e ing he da a o he maps wi h he ibe axis no mal o he sca e ing
plane ( ans e sal o ien a ion) ano he educing s ep was ca ied on. The da a o hese
50
(a) (b)
Figu e 2.26: Recip ocal space map o a DNA sample subme ged in PEG solu ion as mea-
su ed in D16 o bo h o ien a ions: ibe axis in he sca e ing plane (a) and no mal o he
sca e ing plane (b).
maps we e summed o e he sample o a ion angles (ω) and plo ed as a unc ion o he 2θ
o he magni ude o he sca e ing ec o (Q) which a e ela ed h ough ec. 2.8).
Fo he ecip ocal maps collec ed wi h he ibe axis pa allel o he sca e ing plane i was
impo an o ex ac a ep esen a i e da a o a scan along he helix axis, i.e. a scan along
QHwhen QK= 0. To ge his, a na ow QK- ange was chosen cen e ed a QK= 0 (usually
−0.04 < QK<0.04 ˚
A−1) Da a whi hin his ange we e ex ax ed and plo ed agains hei
QH alues, dis ega ding he QK alues.
2.5.2 Small angle neu on sca e ing
The aw SANS pa e ns we e co ec ed o en i onmen al backg ound using a blocked beam
measu emen . De ec s in he sample and e e ence cells we e accoun ed o wi h emp y cell
measu emen s. A e wa ds he in ensi y in absolu e uni s (cm−1) was ob ained by using he
o mula which ela es he expe imen al elas ic signal wi h he di e en ial c oss sec ion:
Iel(~
Q) = I0η(λ)T (λ)∆Ω( dσ
dΩ)el ⊗R(~
Q) (2.23)
51

whe e I0is he inciden lux, ηis he e iciency o he de ec o s, T he ansmission o
he sample, ∆Ω is he solid angle o he de ec o wi h espec o he sample and R(~
Q) is
he ins umen al esolu ion. The expe imen ally de ec ed in ensi y is smea ed wi h espec
o he eal sca e ed in ensi y due o he ini e size o he incoming beam, he wa eleng h
esolu ion and he pixel size o he de ec o . R(~
Q) desc ibes he dis ibu ion o he Q ec o s
a a gi en ins umen con igu a ion and co ec s o his smea ing.
A shee o plexiglass was measu ed in o de o accoun o he de ec o e iciency (η)
since i sca e s iso opically, ansmission o he sample was app oxima ed by a enua ing
he beam and hen measu ing he di ec ansmi ed beam a θ= 0. A moni o be o e
he sample ga e an es ima ion o he inciden lux. A Gaussian unc ion was assumed o
desc ibed he ins umen esolu ion unc ion which has been p o ed easonable in he pas
[46]. The GRASP (G aphical Reduc ion and Analysis SANS p og am) Ma lab code package
was used o applying a ec angula mask o he di ec beam posi ion and hen in eg a e he
da a adially ge ing he inal cu es as in ensi y (cm−1) e sus Q(˚
A).
Then, using he sca e ing c oss sec ion and he GNOM p og am [47] he pai dis i-
bu ion unc ion o each empe a u e was calcula ed. GNOM app oxima es P( ) using he
egula iza ion me hod which is based on minimizing he unc ion:
TG(P) = |I(q)−Zdmax
0
P( )sin(Q )
Q d |2+XΥ(P) (2.24)
whe e Υ(P) is an s abilize con aining a p io i in o ma ion abou he solu ion. I is
no mally assume ha Υ(P) = RdP(R)
d d which equi es P(R) o be a smoo h unc ion. Xis
he egula iza ion pa ame e . The la ge Xis mo e a en ion is paid o he smoo hness o
he inal P( ) and less o i ing he expe imen al da a. The alue o Xis c ucial and he e
is no an accep ed uni e sal e o -p oo me hod o choose he alue.
GNOM sea ch o he op ima Xusing a pe cep ual c i e ia. Wi h his c i e ia he
p og am explo e di e en X alues and es ima es he plausibili y o he solu ion by i s
smoo hness, s abili y wi h espec o X a ia ions and he absence o sys ema ic a ia ions.
52
The pe cep ual c i e ia is epo ed ex ensi ely in he book by Tikhono and A senin [48]
and well summa ized in [49]. The GNOM es ima ions o X a y o di e en SANS cu es
o a sample a di e en empe a u es. The es ima ions all in he ange 0.58 <X<1.2. Fo
consis ency Xwas ixed o 1 o e e y SANS cu e which gi es easonable esul s o all he
da a s udied.
Rega ding he UV-Vis spec oscopy da a eco ded, since in ensi y o he UV-Vis adia ion
h ough he sample was moni o ed a each empe a u e (IS(T)) he abso bance o he sample
can be calcula ed in unc ion o empe a u e as:
A(T) = log10(LS−DS
IS(T)−DS
) (2.25)
whe e LSis he so called ligh measu emen o he in ensi y eco ded when he sample
posi ion is emp y ( ansmi ance o 100%), DSis he da k measu emen o in ensi y eco ded
when he beam is blocked ( ansmi ance o 0%).
2.5.3 Small angle X- ay sca e ing
Fo he SAXS case he educ ion o he da a is almos iden ical. The impo an di e ence is
ha he inal da a was no malized o absolu e uni s using he di ac ion o a glassy ca bon
s anda d as explained in [50].
The calcula ion o he P( ) o SAXS da a was iden ical o he one o SANS.
The con igu a ion o he SAXS ins umen had some ad an ages o e he D22, o exam-
ple he inc eased lux will allowed o pe o m he expe imen wi h a ac ion o he sample
used o neu ons. Howe e , he e we e no in-si u UV-Vis abso ion measu emen s o he
samples s udied by SAXS.
53
Chap e 3
Li e a u e e iew
This chap e p esen s li e a u e esul s which a e ele an o his hesis as well as some o
he models ha will be use o analyze and in e p e he da a.
3.1 P e ious di ac ion s udies in ibe DNA
As desc ibed in he comp ehensi e book by Wa son [51] X- ay di ac ion s udies on DNA
ibe s by Wilkins and Gosling showed ha he DNA molecule can assume a highly pe iodic
s uc u e gi en ha he ibe s a e kep mois . F ankling and Gosling we e he i s o de elop
op imal echniques o con ol he ela i e humidi y o ibe s [52] and hey could ob ain mode
de ined di ac ion pa e ns which hey designa ed A and B. They al eady de ec ed ha
he pa e n o a gi en ibe changes e e sible when he wa e con en o he sample is
modi ied and ha mix u es o A and B pa e ns exi s which co espond o samples wi h a
con o ma ional mix u e.
Wa son and C ick de eloped a wo s anded model [53] which was able o explain he
B di ac ion pa e n and la e a mo e de ailed analysis by Wilkins e al. [54] showed ha
bo h A and B pa e ns could be accoun ed o by he models o wa son and C ick.
54
Since hen, many g oups g ea ly con ibu ed o he o e all knowledge o he cha ac e -
is ics o c ys alline and semic ys aline ibe DNA and hei A and B di ac ion pa e n as
well as he A- o-B ansi ion, a non comple e lis includes: Fulle e al. [55, 41]; F anklin
and Gosling [56]; Lang idge e al. [38]; Fo sy h e al. [57]; Lindsay e al. [58] among o he s.
Se e al comp ehensi e o e iews in he opic can be ound (e.g. [59]), he es o he
sec ion will be ocused in speci ic esul s ha a e specially ele an since hey come om
e y simila expe imen s pe o med on almos iden ical samples wi h espec o he p esen
wo k.
3.1.1 Con o ma ion o humidi ied ibe s. A and B o m DNA as
seen by neu on sca e ing
As desc ibed in sec. 2.3.4 and abo e he di ac ion pa e n o A- o m and B- o m DNA
di e d ama ically and changes in he wa e con en o hyd a ion o he ibe s can igge a
con o ma ional B- o-A ansi ion which is e e sible. The con o ma ion o he DNA unde
s udy mus be aken in o accoun o a co ec in e p e a ion o he sca e ing ea u es.
Valle-O e o e al. [60] s udied ecen ly highly o ien ed we spun ibe s humidi ied a
se e al ela i e humidi ies using neu on sca e ing. They iden i ied he main ea u es which
indica e a gi en sample is in B o m, A o m o a mix u e o bo h con o ma ions.
Fig. 3.1 ep oduced om [60] summa izes hese esul s. The igu e shows selec ed pa s
o he ecip ocal space maps in longi udinal ( ibe axis wi hin he sca e ing plane) o ien a-
ion. The maps ep esen he di ac ed in ensi y in ecip ocal space using he pe pendicula
coo dina e sys em explained in sec. 2.5.1:(QH, QK, QL).
Fig. 3.1a op shows a singula in ense B agg peak cen e ed a (1.87,0,0) ˚
A−1which
is cha ac e is ic o he B- o m. This B agg peak, associa ed wi h a d-spacing ≈3.4˚
A , is
ela ed wi h he long ange o de o he posi ion o he base pai s along he molecula axis
(base pai s acking). This ea u e will be he ocus o he empe a u e dependence s udy by
55
a non andom alignmen o disc e e cha ges on he opposi e molecules.
Exp essions o he h ee componen s can be app oxima ed i he wo molecules a e
assumed o be iden ical al hough hey s ill may o a e a ound i s own axis independen ly.
The whole ma hema ical de i a ion is long and can be ound in [68] (pa C, double helices).
The inal esul s a e:
cyl
16π2ασ0
=1
2κ
K1(κIad)
K1(κRa)K1(κRa)(3.7)
wi h Kn(x) being he modi ied bessel unc ion o he second kind and o de n h.
The sel co ela ion e m:
sel
16π2ασ2
0
=
∞
X
n=1
cos2(nΦs
2)Ω0
n,n(κnIad, κnRa)
κn[K0
n(κnRa)]2(3.8)
whe e κn=p(κ2+ (2π
P)2n2), K0
n(x) = dKn(x)/dx and Φsis he azimu hal hal -wid h o
he mino g oo e (which is ≈0.4π o B-DNA [69]) and Ω0
n,n is so ha :
Ω0
n,m(x, y) =
∞
X
j=−∞ [K0
n−j(x)Kj−m(x) + Kn−j(x)K0
j−m(x)] J0
j(y)
K0
j(y)(3.9)
whe e Jnis he bessel unc ion o he i s kind o de n h and J0
n(x) = dJn(x)/dx.
c oss
16π2ασ2
0
=
∞
X
n=1
(−1)ncos2(nΦn
2) cos[n(Φ1−Φ2)] K1(κnIad)
κn[K0
n(κnRa)]2(3.10)
whe e (Φ1−Φ2) is he ela i e o a ion o he wo iden ical molecules. Fo he calcula ions
o he p esen wo k (Φ1−Φ2) was aking as he op imal ela i e angle which minimizes he
c oss co ela ion ene gy which can be calcula ed as:
62

(Φ1−Φ2) = a ccos κ2
2cos2(Φ
2)[K0
2(κ2Ra)]2K0(κ1Iad)
aκ2
1cos2(φs)[K0
1(κ1)Ra]2K0(κ2Iad)(3.11)
his app oxima ion holds o in e axial dis ances sho e han a c i ical sepa a ion o R∗,
a la ge dis ances he op imal angle is ze o. R∗can be app oxima ed as:
R∗=1
κ2−κ1
ln4 cos2(Φs)[K0
1(κ1Ra)]2κ5/2
cos2(Φs/2)[K0
2(κ2Ra)]2κ5/2
2(3.12)
Fo ces calcula ed wi h his model we e p o en o be consis en wi h expe imen al mea-
su emen s o m Pa segian and cowo ke s [67].
No e ha unde ce ain condi ions his model p edic s an a ac ion o ce be ween DNA
molecules. DNA molecules a e gene ally nega i ely cha ge in solu ion so his may look
un easonable. In a di e en publica ion Ko nyshe and Leikin p o ed ha an a ac i e
esul an o ce can ake place caused by an a ac ion o he phospha es o s ands o one
DNA wi h ca ions adso bed in he g oo es o ano he DNA when DNA is con ined o dense
agg ega es [71].
3.3 Mel ing ansi ion
The mel ing ansi ion is usually cha ac e ized by he mel ing empe a u e, Tm.Tmis de ined
as he empe a u e a which hal o he base pai s in he molecule a e open. I is commonly
used o add essing he s abili y o DNA and o he nucleic acids [72, 73]. In long chain DNA
he mel ing empe a u e depends mainly on he en i onmen al condi ions o he DNA like
hyd a ion le el, ionic s eng h o he medium, he p esence o o he solu es in he su ondings
and also he DNA-DNA in e ac ions.
Ano he ea u e ha helps cha ac e izing he ansi ion is he coope a i i y. The coope -
a i i y o he ansi ion is he endency o he base pai s o open in con iguous segmen s. The
coope a i i y is usually quan i ied by he so called coope a i i y ac o which is he mean
63
numbe o base pai s ha mel as a single he modynamic en i y [74]. In a highly coope a i e
ansi ion, usually shown by sho DNA molecules and specially syn he ic polynucleo ide du-
plexes (poly(dAdT) o poly(dGdC)), mos o he base pai s o he molecule open as a whole
a a single empe a u e. In a less coope a i e ansi ion, asc ibed adi ionally o long na -
u al DNA, many domains in he molecules mel independen ly om each o he a di e en
empe a u es. The coope a i i y depends on he ene gy and en opy changes associa ed wi h
he c ea ion o he open egions be ween helical domains.
The coope a i i y can be accessed expe imen ally since he wid h o he mel ing ansi ion
(which can be measu ed, o example, by calo ime y as explained in sec. 2.2.5) is in e sely
p opo ional o i s coope a i i y. Thus na owe ansi ions a e mo e coope a i e [75].
3.3.1 E ec o he con inemen o DNA in he mel ing ansi ion
A p edic ion o how he in e molecula o ces in dense DNA assemblies a ec he mel ing
ansi ion was published by Che s y and Ko nyshe [69]. They combined he heo y o elec-
os a ic in e ac ions p esen ed in sec. 3.2 (also see [68]) and he wo-s a e one-dimensional
Ising model o DNA mel ing [76].
The model was used o accoun o he di e ence in he ee ene gy o base pai s in closed
(Fc) and open (Fo) s a e. Du ing he mel ing o a single molecule: Fo−Fc= ∆U−T∆S
whe e Tis empe a u e, ∆Uis he hea o mel ing o a base pai and ∆Sis he en opy
di e ence be ween closed and open s a es. ∆S > 0 because open base pai s ha e mo e
deg ees o eedom. A he mel ing empe a u e o his single molecule, Tm0, he numbe o
open (No) and closed (Nc) base pai s is equal so:
s=exp[(Fo−Fc)/(kBTm0)] = 1 (3.13)
whe e kBis he Bol zmann cons an .
This model also includes a coope a i i y ac o σcoop =exp[−Fs/(kBT)] whe e Fsis he
64
ene gy equi ed o c ea e a open egion be ween wo in ac closed egions. Smalle σcop
alues (la ge Fs) co esponds o a mo e coope a i e mel ing.
Che s y and Ko nyshe a gued ha i he o ce be ween DNA molecules is a ac i e
his a ac ion s abilizes he close base pai s, hus i lowe s he ee ene gy in he closed
s a e. The e o e he mel ing empe a u e mus inc easse o eq. 3.13 o s ill hold [69].
Following p e ious s udies in he opic [77, 78] hey modeled he in e ac ion ene gy
be ween pa allel so non-homologous DNA molecules ( o ally independen sequences) as:
E(L) = a0L−La1[1 −l /(2lc)] −a1l2
[1 −el/l ]/(2lc) (3.14)
whe e Lis he leng h o he molecules, lcis he helical cohe en leng h (which has a alue
be ween 300-700 ˚
A o DNA [79, 80]), l =pC /2a1and C is he o sional elas ic modulus
o DNA (usually aken as 3 ×10−18 J˚
A [81]) . a0(Iad) and a1(Iad) a e he elec os a ic
in e ac ion ha monic coe icien s whose exp essions can be ound in he appendix o [69]. As
in p e ious sec ions, Iad is he in e axial dis ance be ween molecules.
Using eq. 3.14 Che s y and Ko nyshe ew o e he ee ene gy o he Ising model as
he sum o he in e ac ion ene gy o he closed agmen s, he ene gy o he closed/open
bounda ies and he ene gy o all he DNA base pai s which allowed hem o ob ain an
exp ession o he ee ene gy as a unc ion o No,Nc,T,Iad and nbwhich is he numbe o
closed/open bounda ies. Minimizing Fwi h espec nand Nh. They de i ed wo coupled
equa ions which mus be ul illed a he mel ing empe a u e in a columna DNA agg ega e:
(N
2nb−1)2=1
σcoop
1−2b/N
2(1 −nb)/N =exp(−1
2
6a(a0−a1)
kBT)
(3.15)
whe e ais he dis ance be ween base pai s (3.4 ˚
A o B o m), nbis he numbe o
closed/open bounda ies and N=Nc+Nois he o al numbe o base pai s.
65
I all he o he pa ame e s a e cons an gi en wo in e axial dis ance: Iad1wi h mel ing
empe a u e Tm1and Iad2wi h mel ing empe a u e Tm2 his model p edic s ha :
Tm2=Tm1
a0(Iad2)−a1(Iad2)
a0(Iad1)−a1(Iad1)(3.16)
3.3.2 E ec o PEG in he mel ing ansi ion
To he bes o ou knowledge he e a e no p e ious s udies on he mel ing o DNA ibe s
subme ged in PEG solu ions. Howe e , he mel ing o DNA dissol ed in many di e en PEG
solu ions was epo ed by di e en g oups (e.g. [82, 83]) and he esul s a e ele an o he
p esen wo k.
When PEG is dissol ed in a DNA-wa e solu ion i dec eases he wa e ac i i y o he
solu ion which in u n dec eases he mel ing empe a u e o DNA because i changes he
wa e s uc u e a ound he DNA molecules [82]. This is belie ed o be he explana ion
o low-molecula weigh PEGs and o he polyme s dec easing he mel ing empe a u e o
DNA dissol ed in solu ion. Howe e , high molecula weigh polyme s inc ease he mel ing
empe a u e o DNA in solu ion. The o igin o such inc ease was said o be he excluded
olume e ec . This assumes ha he olume o he solu ion una ailable o he DNA due o
he PEG p esence s abilizes he molecula con o ma ion which occupies he smalles space,
ha is, he helix molecule [82, 83]. The dec ease o he wa e ac i i y s ill happens o
he long chain polyme s bu i s e ec on he mel ing has been p o en o be e y small in
compa ison o he e ec o he excluded olume [82].
A s ong indica ion ha he excluded olume e ec is aking place is ha he a ia ion
o Tmis changing d ama ically wi h he molecula weigh o he PEG [82, 73], as can be seen
in ig. 3.3.
E en hough i is no pa en , hese esul s o DNA in solu ion a e ele an o he
case o DNA- ibe s subme ged in PEG solu ions. I he PEG pene a es he ibe s hen he
66
Figu e 3.3: Va ia ion o Tmo E.coli DNA in solu ion wi h he mola concen a ion o he
PEG 400 (squa es), 1000 (ci cles), 3400 ( iangles), 8000 (in e se iangles). Rep oduced
om [82].
sample is no much mo e di e en han a e y concen a ion DNA solu ion and he excluded
olume o he PEG will a ec he mel ing ansi ion o he ibe s. On he con a y, i he
PEG emains sepa a ed om he DNA, in he ou side o he ibe s, jus a small ac ion o
he DNA molecules in he sample will be in con ac wi h PEG molecules and he excluded
olume e ec will be negligible.
3.3.3 E ec o e hanol in he mel ing ansi ion
I is known ha inc easing concen a ions o e hanol dec ease he mel ing empe a u e o
DNA in solu ion [84]. The main ac o s explaining his beha io a e he inc eased elec o-
s a ic epulsions among phospha e g oups o he helix due o he lowe ing o he dielec ic
cons an s o he e hanol solu ion as he e hanol concen a ion inc eases, he hyd ophobic
e ec and he dec eased wa e ac i i y [84]. In he case o he ibe s subme ged in e hanol
solu ions he e is no a phase sepa a ion as happens wi h PEG o a high enough molecula
weigh . E hanol is a e y small molecule in compa ison wi h PEG ( he molecula weigh o
e hanol is 46.07 g/mol) and will pene a e he ibe s as easily as he wa e molecules. The e-
67

(a) (b)
Figu e 3.4: Mel ing empe a u e ( illed ci cle) and wid h o he ansi ion (open ci cle) o
ibe subme ged in e hanol solu ions. a)Na-DNA and b)Li-DNA. Rep oduced om [85].
o e he same ac o s which a ec DNA in solu ion will o su e be p esen in he subme ged
ibe samples.
Rupp ech e al. s udied he mel ing ansi ion o e y simila DNA we -spun ibe s
samples subme ged in e hanol/wa e mix u es ([85],[86]). They used a mechanochemical
me hod which can ela e changes in he leng h o he subme ged ibe s s ained by a weigh
wi h con oma ional and he modynamical ansi ions o he DNA [87]. Fig. 3.4 summa izes
hei esul s o Na−and Li-DNA ibe s.
Fo Na-DNA ( ig. 3.4a) Tmdec eases om a ound 60% o 88% e hanol concen a ion
([E OH]) bu he e is a local maximum a a ound 75%. The wid h o he ansi ion dec eases
sligh ly om 60% o 70% and d ops s eeply a a ound 75% [E OH]. These seemingly coupled
changes in he beha io o Tmand he wid h we e ela ed wi h he B- o-A o m ansi ion o
he seconda y s uc u e o he DNA (sec ion 2.3.4). Rupp ech e al. linked he e ec o he
B- o-A ansi ion on Tmand wid h o he s onge in e -helical in e ac ions ha he A- o m
exhibi s wi h espec o he B- o m in agg ega ed DNA [88].
68
Fo [E OH] highe han 90% he changes in Tmand wid h we e ela ed wi h a ansi ion
o P- o m DNA [89], a e y s able and dehyd a ed DNA o m which is no o in e es o
he p esen wo k.
Fo Li-DNA ibe s ( ig. 3.4b) he Tmdec eases mono onically un il a ound 83%. The
wid h s ays cons an om 70% o 75% and hen dec eases s eadily. The aise in Tmand
wid h a e ≈82% is again ela ed wi h he ansi ion o he P- o m. In hese samples a
B- o-C ansi ion was de ec ed a a ound 80% e hanol.
These ansi ions we e also de ec ed by X- ay sca e ing in [61] (B- o-A) and in [62]
(B- o-C) as explained in sec. 3.1.2.
Rupp ec h e al. measu ed samples subme ged in e hanol solu ions in a a he ex ensi e
ange (0.3-3 M) o sal concen a ions (NaCl o Na-DNA ibe s and LiCl o Li-DNA
ibe s). They ound no a iance o he mel ing ansi ion wi h sal concen a ion in his
ange [87].
3.4 Models o DNA and he mel ing ansi ion
3.4.1 Pey a d-Bishop-Dauxois model
The one dimensional Pey a d-Bishop-Dauxois (PBD) model [90], [91] was used o analize
he pa o he neu on da a. The model is able o p edic mel ing cu es o complex DNA
molecules and sol e he dynamical p ope ies associa ed o he o ma ion and s abili y o
he dena u a ion bubbles [92].
A simple e sion o he model desc ibes a DNA molecule as Nbase pai s placed in a
1D diso de ed chain wi h a mean sepa a ion o a, ig. 3.5. The s a e o each base pai is
desc ibed by a single eal a iable, yn, which is he s e ching o he base pai pe pendicula
o he molecula axis wi h espec o i s equilib ium posi ion. yn anges om 0 o +∞. The
Hamil onian o such a sys em is:
69
Figu e 3.5: G aphical ep esen a ion o he PBD model. ynis he s e ching o he n h
base pai , ais he mean dis ance be ween consecu i e base pai s, xnis he local s uc u e
de ia ion o he n h base pai , Wis a po en ial desc ibing in e -pai in e ac ion and Vis a
po en ial accoun ing o he in e ac ions be ween he wo bases wi hin he pai n h.
Hy=
N−1
X
j=1
W(yj, yj+1) +
N
X
j=1
Vj(yj) (3.17)
whe e yj ep esen s he s e ching o he j h base pai caused by he ans e se displace-
men o he bases. W(yj, yj+1) is a po en ial desc ibing he s acking in e ac ion be ween
adjacen bases [93]:
W(yj, yj+1) = 1
2k[1 + ρe−b(yj+yj+1)](yj−yj+1)2(3.18)
whe e kis a coupling cons an , ρis he ela i e s eng h o he nonlinea base s acking
and bis he in e se ange o he nonlinea base s acking. Vjdesc ibes he in a-pai po en ial
in he j h base pai and akes in o accoun he hyd ogen-bonding, elec os a ic in e ac ions
be ween phospha e g oups and sol en e ec s. I is usually aken as a Mo se po en ial:
Vj(yj) = Dj[1 −e−αjyj] (3.19)
wi h Djand αjbeing espec i ely he dep h and in e se ange o he po en ial. Fou
70
di e en pa ame e s we e necessa y o desc ibing he wo kinds o base pai s:DAT ,αAT and
DGC,αGC.
The model can be used o calcula ed he size dis ibu ion o he closed segmen s o DNA
which would be ins umen al o he analysis o he di ac ion da a p esen ed in his wo k.
A de ailed desc ip ion o his calcula ion has been epo ed elsewhe e [7]. He e only main
s eps o he p ocess a e p esen ed.
A quan i a i e de ini ion o a closed base pai is needed o calcula e he size o he closed
egions a a gi en empe a u e (T) . Base pai jis conside ed closed i yj< ycwhe e yc
co esponds o a s e ching well on he pla eau o he Mo se po en ial.
The s a is ical weigh o a gi en con igu a ion o he molecule he malised a empe a u e
Tis[7]:
zT=Zy 1
yl1
dy1···Zy N
ylN
dyN·exp−Hy(y1,··· , yN)/kBT(3.20)
whe e kBis he Bol zmann cons an and yland y de ine he con igu a ion. I yl=−∞
and y =∞ o all j, he molecules explo e he whole con igu a ional space and zT=Z
whe e Zis he pa i ion unc ion. ylj = 0 and y j =ycde ine a con igu a ion in which he
base pai jis closed. I ylj =ycand y j =∞de ine a con igu a ion in which base pai jis
open. The in eg als associa ed wi h all con igu a ions can be easily calcula ed as a se ies o
mono-dimensional in eg las because he model is one-dimensional and es ic ed o nea es
neighbo coupling. [7]
The p obabili y o madjacen base pai s being closed s a ing wi h he si e iis hen:
P(m, i) = zT(y1,··· , yi−1, yi< yc, yi+1 < yc,··· , yi+m−1< yc, yi+m,···)/Z (3.21)
Eq. 3.21 calcula es he s a is ical weigh o con igu a ions whe e es ic ions on he
in eg a ion ange we e imposed o all si es belonging o he closed egion and no es ic ions
71
(a) (b)
(c) (d)
(e) ( )
Figu e 4.1: X- ay di ac ion pho og aphs o DNA ibe s. Fibe s equilib a ed wi h an a -
mosphe e o 75% RH a) Na-DNA and b) Li-DNA. Fibe s subme ged in e hanol solu ions:
c) Na-DNA 60% , d) Na-DNA 70%, e) Li-DNA 20% ) Li-DNA 70%. The momen um
coo dina e sys em is de ined by QH s. QKwhe e QHis pa allel o he molecula axis and
QKis pe pendicula o i . 78

4.2 Room empe a u e s udy wi h neu ons
4.2.1 Fibe s subme ged in PEG solu ions
Fi e samples o Na-DNA subme ged in PEG solu ions we e s udied by neu on sca e ing a
oom empe a u e. The solu ions con ained: PEG 6000 a 17% (w/w) (PEG6K-17%); PEG
6000 a 20% (PEG6K-20%); PEG6K-40%; PEG 8000 a 15% (PEG8K-15%); and PEG 8000
a 20% (PEG8k-20%). As a e e ence, Na-DNA ibe s humidi ied a 92% RH in a 2H2O
a mosphe e we e also measu ed (Na-humid).
The le panels o ig. 4.2 shows he ecip ocal space maps o he Na-humid ibe s.
Fig. 4.2a is he map o he longi udinal o ien a ion ( ibe axis wi hin he sca e ing plane).
Fig. 4.2c is he map o he ans e sal o ien a ion ( ibe axis pe pendicula o he sca e ing
plane). The maps ep esen he di ac ed in ensi y in ecip ocal space using he pe pendic-
ula coo dina e sys em explained in sec. 2.5.1: (QH, QK, QL).
Na- ibe s a his RH a e expec ed o be in he semic is aline B- o m o DNA [98, 60].
Indeed, ig. 4.2a shows a singula in ense B agg peak cen e ed a (1.87,0,0) ˚
A−1( he 10 h
laye B agg peak) which is cha ac e is ic o he B- o m as discussed p e iously (sec. 3.1.1).
The ans e sal ecip ocal map shown in ig 4.2c is quali a i ely iden ical o he esul s
p esen ed in 3.1.1 and also sugges ha he sample is in he B- o m. I shows wo ing-
like ea u es, one s ong and cen e ed a ound Q= 0.5˚
A−1and ano he much weake a
a ound Q= 0.57 ˚
A−1. These e lexions a e ela ed o he semic ys alline packing o he
DNA molecules in he di ec ion pe pendicula o he ibe axis [60, 23].
The ibe s subme ged in PEG solu ions all showed e y simila ea u es and only he da a
o he PEG6k-17% sample a e shown in ig. 4.2b and 4.2d as model examples. The subme ged
samples ha e subs an ially mo e incohe en sca e ing in compa ison o he humid ibe s due
o he p esence o p o ona ed PEG and so he signal- o-noise a ios o he B agg peaks a e
smalle . The ea u es may also be b oade in he sample o a ion angle, sugges ing ha
79
some o ien a ion o he ibe s has been los . Howe e , he esul s a e quali a i ely iden ical
o he humid ibe s. This means ha he ibe s subme ged in PEG solu ions a e also in
he B- o m and mos o he long ange o de o he ibe s is no los du ing he subme sion.
Simila esul s ha e been epo ed p e iously by Wildes e al. [12].
Fig. 4.3 shows he low-Qpa o he ecip ocal space map in longi udinal o ien a ion o
he Na-humid and PEG6K-17% ibe s. The maps a e ea u eless o hese sample excep
o he halo o he di ec beam in he le bo om co ne . This esul is su p ising since
p e ious s udies in e y simila samples concluded ha an addi ional B agg peak in his
egion, cen e ed a (QH, QK) = (0.25,0.3), was ano he e lexion ela ed wi h he B- o m
(sec. 3.1.1 and [60]). This ea u ed has no been de ec ed in hese o o he samples measu ed
in he p esen wo k. This sugges ha he peak a (0.25,0.3) was ela ed wi h some speci ic
c ys alline a angemen o he samples s udied in [60] bu does no seem o be a uni e sal
ea u e o he B- o m o DNA.
The da a o he ans e sal ecip ocal space maps we e used o calcula e he in e axial
dis ance be ween molecules (Iad) o e e y sample and hus o gauge he e ec o he PEG
solu ion on he con inemen o he molecules. The da a o hese maps we e summed o e
he sample o a ion angles o equal Q alues and plo ed as a unc ion o he magni ude o
Q( he sca e ing ec o ). Fig. 4.4 shows he esul s.
The peaks o he subme ged samples a e shi ed o lowe Q alues wi h espec o
hose o he Na-humid ibe s. This sugges an inc ease in he la ice pa ame e s which is
consis en wi h he ibe s swelling when subme ged. B- o m DNA ibe s a e belie ed o ha e
a hexagonal space g oup, as shown o B- o m Na-DNA a 92% RH by Lang idge and Wilson
[38] and o samples subme ged in PEG solu ion by Podgo nik e al. [11]. The wo peaks
can be indexed as he 110 and 200 e lexions espec i ely om he hexagonal la ice. The
d-spacing ela ed wi h a gi en peak is d= 2π/QCwhe e QCis he cen e o he peak and
he ela ion be ween he Mille indices and he la ice pa ame e a, co esponding o he
axis- o-axis dis ance be ween wo molecules, is
80
(a) (b)
(c) (d)
Figu e 4.2: Recip ocal space maps o he Na-DNA ibe s in he longi udinal ( op) and
ans e sal (bo on) o ien a ions. a) and c) a e he maps o ibe s humidi ied o 92% RH.
b) and d) a e maps o ibe s subme ged in a PEG6K-17% solu ion. Da a measu ed in D16.
81
(a) (b)
Figu e 4.3: Low Q-pa o he ecip ocal space maps o he longi udinal o ien a ion o a)
he Na-humid ibe s and b) he ibe s subme ged in PEG6k-17%. Da a measu ed in IN3.
(a) (b)
Figu e 4.4: Sum o he in ensi y o e he sample o a ion angles o he ans e sal ecip ocal
space maps o cons an sca e ing ec o as a unc ion o Q. The cu es ha e been shi ed
e ically o cla i y. Red lines a e he i o he da a. Da a on he le we e measu ed on
D16, da a on he igh on WOMBAT.
82
Sample Iad (˚
A) ∆a
aHu (%)
PEG6k-17% 28.24 ±0.05 14.54 ±0.91
PEG8k-15% 26.92 ±0.06 9.18 ±0.99
PEG8k-20% 26.11 ±0.04 5.90 ±0.81
PEG6k-20% 25.48 ±0.03 3.33 ±0.70
PEG6K-40% 24.08 ±0.03 −2.35 ±0.62
Humid ibe s 24.66 ±0.09 0
Table 4.1: Pe cen age inc ease in he in e molecula spacing o Na-DNA ibe s subme ged
in PEG solu ions Wi h Respec o he Humidi ied Fibe s.
a=d(4
3(h2+kh +k2))1/2(4.1)
The cen e s o he peaks o each sample we e de e mined by i ing wo Gaussian unc-
ions wi h a linea backg ound. The esul s o he i s can be seen in ig. 4.4. The la ice
pa ame e o he Na-humid sample was calcula ed using he a e age a om bo h peaks.
The esul was aHu = 24.66 ±0.09 ˚
A, which is consis en wi h p e ious esul s [38]. The in-
e molecula dis ances o he o he samples we e compu ed analogously and he pe cen age
inc ease in in e molecula dis ance wi h espec o he humidi ied ibe s was calcula ed. Ta-
ble 4.1 shows he alues o he pe cen age inc ease and he in e axial dis ance (Iad) o each
sample. All he samples swelled unde subme sion (Iad inc eased) excep o PEG6K-40% in
which he osmo ic p essu e comp essed he ibe s o Iad sho e han ha o he Na-humid
ibe s.
4.2.2 Fibe s subme ged in e hanol solu ions
Six samples subme ged in deu e a ed e hanol solu ions we e in es iga ed wi h neu ons a
oom empe a u e: Na-DNA in 60% e hanol-d6 ( / ) wi h 0.1M NaCl (Na-60%-0.1); Na-
DNA in 66% wi h 0.1 M NaCl (Na-66%-0.1); Na-DNA in 66% wi h 0.01 M NaCl(Na-66%-
0.01); Li-DNA in 20% (Li-20%); Li-DNA in 60%(Li-60%); and Li-DNA in 80% (Li-80%).
83

All he solu ions o li hium samples had a LiCl concen a ion o 0.1Mand so i has no
been included in he code o he sample. As a e e ence o he li hium samples, Li-DNA
ibe s humidi ied a 75% RH (Li-humid) we e also measu ed.
E hanol mix u es p esen some ad an ages o e polyme solu ions o he s udies o DNA
ibe s using neu on sca e ing: a) hey do no con ain long-chain polyme s which con ibu e
o he sca e ing o he sample and could mask he signal o he DNA. b) ully deu e a ed
e hanol is easily accessible while ully deu e a ed PEG is p ohibi i ely expensi e. Minimizing
he amoun o 1Hin he sample is impo an o neu on sca e ing since i con ibu es o
he incohe en sca e ing and deg ades he peak-signal- o-noise a io.
As shown in sec. 4.1 he Na- ibe s subme ged in e hanol unde go a B- o-A ansi ion
due o he e hanol d as ically educing he wa e ac i i y o he solu ion [61].
Fig. 4.5 shows a longi udinal ecip ocal space map o Na-66%-0.1. I shows o -axis
peaks cha ac e is ic o he A- o m DNA as p esen ed in sec. 3.1.1. This is consis en wi h he
X- ay measu emen s p esen ed in p e ious sec ions and wi h he li e a u e (sec. 4.1 and [61])
which p o ed ha he e hanol-induced B- o-A ansi ion happens a e hanol concen a ions
be ween 60%-70%. I is impo an o no ice ha he 10 h laye peak s ill emains al hough
i is much weake . The supe posi ion o B- and A- o m ea u es indica es ha he sample is
a mix u e o con o ma ions. Mos o he molecules a e in A- o m bu some o hem a e s ill
hyd a ed enough o be in B- o m. I can be said ha he sample has ”B- o m con amina ion”.
As p esen ed in sec. 3.1.1 e idence o con o ma ional mix u es we e p e iously de ec ed using
neu on sca e ing and o he echniques.
The in luence o he sal concen a ion on he amoun o e hanol needed o cause he
A- o-B ansi ion has been p e iously epo ed [58]. Highe sal con en seems o a o he
A- o m. Neu on da a suppo his. Fig. 4.6a shows he high-Qpa o he longi udinal
ecip ocal map o he Na-66%-0.01 sample. The 10 h laye B agg peak is s ong and he o
axis peaks a e weak. Fig. 4.6b show he low-Qpa o he map. A B agg peak appea s a
(QH, QK) = (0.45,0.3) which is usually ela ed wi h A- o m DNA (sec. 3.1.1). These esul s
sugges his sample is composed p edominan ly by B-DNA wi h some A- o m con amina ion
84
Figu e 4.5: Recip ocal space map in longi udinal o ien a ion o he Na-66%-0.1 sample.
Measu ed in IN3.
in opposi ion o he simila sample wi h 0.1M NaCl. The lowe NaCl con en o his
sample seems o inc ease he numbe o molecules which emain in he B- o m.
Fig. 4.6c shows he 10 h laye peak o he Na-60%-0.1 sample. I sugges s ha his
sample is in he B- o m which is consis en wi h he p e ious p esen ed X- ay da a bu
some e y weak o -axis ea u es may be asse ed o exis a (QH, QK) = (1.6,0.5) ˚
A−1and
(1.6,−0.5) ˚
A−1. In addi ion, he low-Qpa o he longi udinal ecip ocal space map (shown
in ig. 4.6d) shows clea ly he A- o m B agg peak men ioned abo e. I seems like he Na-
60%-0.1 sample has some A- o m con amina ion e en hough i was no app eciable in he
X- ay images.
Simila measu emen s p o ed ha Li-DNA ibe s show a pu e B- o m a e hanol concen-
a ions up o 80% (compa e ig. 4.6e and 4.6 wi h sec 3.1.1).
He ea e Li-DNA ibe s subme ged in e hanol will be conside ed o be in a pu e B- o m.
On he con a y, Na-DNA ibe s subme ged in e hanol concen a ions equal o abo e 60%
e hanol in olume would be conside ed o ha e some deg ee o A/B mix u e o con o ma ions.
The e ec o he subme sion o he Na- and Li-DNA samples in e hanol on he in e axial
85
(a) (b)
(c) (d)
(e) ( )
Figu e 4.6: Longi udinal ecip ocal space maps (le :high-Q, igh :low-Q) o : Na-66%-0.01
[(a), and (b)]; Na-60%-0.1 [(c), (d)]; and Li-80% [(e) and ( )]. Measu ed in IN3.
86
dis ance (Iad) was add essed using he same p ocedu e as o he PEG samples. Recip ocal
space maps in he ans e sal o ien a ion we e measu ed and he in ensi y was summed o e
he sample o a ion angles ( o cons an Q) and plo ed as he magni ude o Q.
Fig. 4.7 shows ep esen a i e examples o he ecip ocal space maps collec ed on D16 o
gauge he in e molecula dis ance o he samples subme ged in e hanol solu ions along wi h
he humidi ied Li- ibe s. Fig. 4.7a is iden ical o ig. 3.2a wi h h ee ing-like e lec ions,
one s ong and cen e ed a Q≈0.3˚
A−1and wo weake ones a Q > 0.3˚
A−1. In he maps
o he samples subme ged in e hanol a ea u e can be seen a a ound 0.3˚
A−1which was no
p esen in hei PEG coun e pa s ( ig. 4.4). Fo he Li-DNA ibe s he adial dis ibu ion
o his new ea u e is homogeneous. Fo he Na-DNA ibe s, he e is a guably a spo o
highe in ensi y cen e ed a app oxima ely (QL, QK) = (0.3,0) which is simila o he peak
obse ed in ig. 3.2b, he pa e n o a pu e A- o m sample. This is ano he p oo ha he
Na-DNA ibe s subme ged in e hanol ha e a mix u e o con o ma ions A and B.
The esul o he summa ion o e he o a ion angle o equal Qs o he e hanol samples
can be seen in ig. 4.8.
The da a o he Li- ibe s humidi ied a 75% RH (black in ig. 4.8a) show a leas h ee
clea e lexions a app oxima ely 0.3, 0.58 and 0.68 ˚
A−1. The o he Li-samples show co e-
sponding e lexions. Fo all Li- ibe s he e lexion a 0.3˚
A−1is composed o wo peaks which
a e e y close. This is pa en o he Li-20% sample and i is sugges ed o he es o he
samples due o he ail o he e lexion in he low-Qpa and he asymme y o he e lexion.
The e o e he e a e ou e lexions o conside in each cu e ela ed wi h Li-samples. These
cu es a e a he di e en om wha was obse ed o he same measu emen s o PEG
samples. The double-peak ea u e is no p esen ed in he PEG samples and he p e iously
obse ed s ong peak a a ound 0.5˚
A−1appea s much weake in he e hanol samples.
I has been epo ed ha Li-DNA ibe s humidi ied a 75% RH ha e an o ho hombic
packing s uc u e o i s molecules wi h wo molecules pe uni cell in equi alen posi ions
(0,0,1
6) and (1
2,1
2,−1
6) [38]. The di e en alues in he z-axis mean ha neighbo ing molecules
a e displaced wi h espec o each o he along he ibe axis. In an o ho ombic la ice he
87
we e p epa ed wi h an iden ical bu e (sec. 2.1.1). The PEG-concen a ion ange o he
s udied samples was 5 < C%<40 whe e C%is he PEG concen a ion in weigh pe cen .
Th ee o he ypes o samples we e measu ed in addi ion o ibe s subme ged in PEG
solu ions: ibe s equilib a ed in a humid a mosphe e wi h 92% ela i e humidi y (Na-humid
ibe s); he same DNA used o he p epa a ion o he ibe s (salmon es es) dissol ed in
he bu e used o p epa e he PEG solu ion; and ibe s subme ged in he bu e . No e
ha subme sion in PEG- ee bu e caused pa ial dissolu ion o he ibe s, bu due o he
ela i ely low solubili y o he DNA in wa e (10 mg/ml o a saline bu e acco ding o he
p o ide ) mos o he DNA emained in ibe o m.
The calo ime y da a o e e y sample showed a well de ined single-peak ela ed wi h he
excess hea capaci y o he mel ing ansi ion. Fig. 4.9a shows ep esen a i e examples o
he da a. I displays he speci ic hea as a unc ion o empe a u e o he humid ibe s and
ibe s subme ged in a solu ion o PEG6k-20%, along wi h he espec i e i s o he cu es
using a Gaussian unc ion and he ac ion o closed base pai s ( DS) calcula ed using eq.
2.6. The mel ing empe a u es, Tm, a e highligh ed.
Fig. 4.9b shows he Tmo : he humid ibe s (92% RH); he DNA dissol ed in he bu e ;
he ibe s subme ged in PEG- ee bu e ; and o he subme ged ibe s in PEG solu ion as a
unc ion o PEG concen a ion ([PEG]).
DNA molecules dissol ed in solu ion a e less con ined han he DNA molecules o he
ibe s subme ged in he PEG- ee bu e . Excep o ha , he DNA o bo h samples a e
subjec ed o he same condi ions (hyd a ion, ionic en i onmen e c). The Tmo DNA ibe s
subme ged in bu e is highe han Tm o he DNA dissol ed in he same bu e . The e o e i
is p obable ha con inemen is he o igin o he highe Tm o he subme ged ibe s. A simila
e ec was epo ed p e iously in [99], in his s udy he ansi ion be ween DNA dispe sed in
solu ion and an agg ega ed liquid-c ys alline s a e inc eased he Tmmeasu ed by di e en ial
scanning calo ime y. Mo e ecen ly, consis en esul s we e published in [100] whe e a shi
o he DNA mel ing empe a u e o se e al deg ees occu ed due o he agg ega ion o DNA
molecules. As explained in sec. 3.3.1, in e ac ion be ween densely packed DNA molecules
94

(a) (b)
(c)
Figu e 4.9: a) The hea capaci y pe uni mass, ∆c, o Na-DNA ibe s equilib a ed in
an a mosphe e and 92% RH and subme ged in a solu ion o PEG6k-20% w/w is plo ed
wi h solid hick black lines, he solid hin ed lines ep esen he i o he da a, he blue
dashed lines a e he ac ion o closed base pai s as a unc ion o empe a u e. The Tms
a e highligh ed. b) Mel ing empe a u e measu ed o a dilu e solu ion o DNA, DNA ibe s
humidi ied a 92% RH, ibe s subme ged in bu e and ibe s subme ged in solu ions o
PEG1k, PEG6k and PEG8k as a unc ion o he [PEG]. c) Wid h o he ansi ion o he
same samples o panel b). The g een line ma ks he alue o he wid h o he humid ibe s.
E o ba s ep esen he s anda d de ia ion o measu emen s on iden ical samples.
95
can heo e ically inc ease Tm.
The Tm o PEG samples we e consis en ly highe han o ibe s subme ged in bu e
wi h no PEG. Tminc eases linea ly wi h [PEG] and he end is equi alen (wi hin e o
ba s) o PEG6K and PEG8K. The beha io o Tmas PEG1K concen a ion inc eases is
app eciably di e en .
Simila e ec s we e epo ed o DNA dissol ed in PEG solu ions [82, 83] and we e
explained ia he excluded olume e ec (sec. 3.3.2). The excluded olume could be he
main e ec explaining he s abiliza ion caused by PEG1K. PEG1K is signi ican ly sho e
han PEG6K which is supposedly he sho e PEG which is excluded om he DNA ibe s
([67] and sec. 3.1.3). I he PEG1K can pene a e he ibe s i will sha e he same space as
he DNA and he sample will be quali a i ely simila o a e y dense DNA solu ion in which
he excluded olume would be an impo an ac o .
Howe e , o PEG6K and PEG8K i is easonable o assume, based on p e ious e idence,
ha he PEG molecules did no pene a e he ibe s [11] and hus only a small pe cen age
o he DNA molecules in he sample a e in con ac wi h PEG molecules. Knowing ha he
wid h o he mac oscopic DNA ibe s is ≈0.5mm, i one assumes ha he DNA molecules
o ming he ibe ha e a ha d diame e o 20 ˚
A and hey a e closely packed so ha he e
is no sepa a ion be ween molecules, he pe cen age o DNA molecules in he su ace o
he ibe s can be oughly es ima ed as less han 1%. The e o e he excluded olume and
speci ic in e ac ions o he PEG wi h DNA canno a ec signi ican ly he mel ing ansi ion.
Mo eo e , he end o Tmas [PEG] is inc eased seems o be he same o PEG6K and
PEG8K which is consis en wi h he excluded olume ha ing a insigni ican e ec in he
ansi ion ([82] and sec. 3.3.2).
When DNA ibe s a e subme ged in PEG6K and PEG8K solu ions, he e is a well de ined
a e age in e axial dis ance which dec eases as [PEG] inc eases (due o he osmo ic p essu e
o he solu ion which g ows wi h [PEG]) as can be seen in able 4.1 and also in [10, 11].
The e o e he con inemen in hese samples is inc easing wi h [PEG]. As p esen ed in sec.
3.3.1 i may be he main ac o in he inc ease o Tmo he samples subme ged in high
96
Pa ame e Value
κ−19.63 ˚
A
Ra9˚
A
P34 ˚
A
Φs0.8π
a3.4˚
A
θ 0.8
s80
c0.4
σ016.8µC/cm2
Table 4.4: Pa ame e s used in he calcula ion o /(16π2ασ0) and he heo e ical mel ing
empe a u e. No e ha he alue o κ−1 he e was used only o he calcula ion o he
in e molecula oce. I was adjus ed o he calcula ion o Tm(see ex ).
molecula weigh PEG solu ions.
This idea can be u he explo ed by combining he calo ime y da a o Tmwi h he
in e axial dis ance (Iad) measu ed by neu ons and he models o DNA con inemen de eloped
by Ko nyshe and Leikin p esen ed in sec. 3.2. Fig. 4.10b shows a compa ison o his model
wi h ou expe imen al da a. The magni ude /(16π2ασ0) is p opo ional o he in e ac i e
o ce be ween wo DNA molecules as p edic ed by he model [68]; calcula ed using equa ions
3.6. The pa ame e s used a e p esen ed in able 4.4. (They a e Ra,P, Φsand κ−1 o
Debye leng h). The alues o Raand Pa e easonable o B- o m DNA, 0.8πis a usually
accep ed alue om he li e a u e [68] and he Debye lengh was calcula ed based on he
sal con en o he solu ion (0.1M NaCl) as done in [101]. The model p edic s an a ac i e
o ce be ween molecules which inc eases as he in e axial dis ance dec eases.
Fig. 4.10 shows ha bo h Tmand he wid h o he ansi ion a e qui e co ela ed wi h he
in e ac ion o ce o e mos o he ange s udied which suppo s he idea o he con inemen
being he main ac o in he e ec o he PEG in he ibe samples.
This co ela ion does no hold a Iad = 28.24 ˚
A. Wi hin he model he a ac ion be ween
97
(a) (b)
Figu e 4.10: a) Le scale: Blue squa es a e he mel ing empe a u es measu ed by calo ime-
y as a unc ion o he in e axial dis ance be ween molecules (Iad). Righ scale: he ed
line is p opo ional o he absolu e alue o he a ac i e o ce be ween molecules p edic ed
by eq. 3.6. b) Le axis: Blue squa es a e he wid h o he mel ing ansi ion measu ed by
calo ime y as a unc ion o Iad. Righ axis: he ed line is p opo ional o he o ce o he
p e ious panel.
98
DNA molecules is closely ela ed o he non- andom alignmen o opposi e s ands which is
de ined by he ela i e o a ion o he wo helices (Φ1-Φ2) [68]. The selec ion o Φ1-Φ2in
he p esen calcula ion was based on a minimiza ion o he in e ac ion ene gy which holds
a dis ances sho e han R∗, he c i ical sepa a ion, gi en by eq. 3.12. Subs i u ing he
pa ame e s used o compu ing he o ce o ig. 4.10 in o eq. 3.12 gi es R∗≈29.32 ˚
A. This
could ce ainly explained he b eaking o co ela ion be ween expe imen al da a and model
a Iad = 28.24 ˚
A.
Fu u e wo ks will y o imp o e he ma ching o model and expe imen al da a by chang-
ing he app oxima ion o Φ1-Φ2as R∗is app oached.
In addi ion o his quali a i e compa ison be ween heo y and expe imen , a heo e ical
p edic ion o he inc ease o Tmas Iad dec eases was ied using eq. 3.16. The pa ame e s
used o his calcula ion we e aken om he li e a u e [69] and a e p esen ed in able 4.4
excep o κ−1.θ is he ac ion od DNA cha ge compensa ed by adso bed ca ions, cis he
ac ion o adso bed ca ions in he mino g oo e o DNA and sis he dielec ic cons an o
he solu ion ( o which he alue o wa e was aken).
A Debye sc eening leng h o 9.63 ˚
A is a easonable alue o he sal concen a ion o
he solu ions he samples we e subme ged in. Howe e , when used in eq. 3.16 i ga e a
e y poo esemblance wi h he da a. Fig. 4.11 shows a compa ison o he heo e ical and
expe imen al Tmas a unc ion o Iad o a calcula ion wi h κ−1= 88 ˚
A. Eq. 3.16 allows
o p edic he a ia ion o Tmwhen Iad changes wi h espec o a e e ence Tm, which is
highligh ed in he igu e, and o which he heo e ical Tmis assumed o ma ch exac ly he
expe imen al da a.
Fig. 4.11 shows ha , wi h his la ge alue o κ−1 he model ma ches he da a ema kably
well. Theo y and model di e o he Tma 28.24 ˚
A, his p edic ion o Tmis based in he
calcula ion o he o ce p esen ed in ig. 4.10 (sec. 3.3.1 and [69]) so he ange o applicabili y
should be he same. The e o e i is no su p ising ha he p edic ion o Tm ails a Iad = 28.24
˚
A.
99

Figu e 4.11: Compa ison be ween expe imen al and heo a ical Tmas a unc ion o Iad o a
Debye sc eening leng h o 88 ˚
A.
κ−1= 88 ˚
A ela es o a solu ion wi h a sal concen a ion oughly wo o de s o magni ude
lowe ha he expec ed Debye leng h o he solu ions o he samples. The samples could
exhibi a smalle ion ac i i y han expec ed because o he p esence o PEG which was no
accoun ed o in he calcula ion o κ. Howe e , a wo o de s o magni ude dec ease in he
ionic s eng h looks un easonable. The model, which ge s he Tm igh jus by changing one
pa ame e , may ha e a ela i ely small sho coming.
4.3.2 Fibe s subme ged in e hanol
Calo ime y da a we e collec ed in Na/Li-DNA ibe s subme ged in e hanol solu ions as
a unc ion o he e hanol concen a ions be ween 20% and 85% ( / ). The solu ions a e
desc ibed in sec. 2.1.1. All samples o he calo ime y s udy o his sec ion con ained 0.1
Mo he co esponding sal .
Fig. 4.12a shows examples o calo ime ic cu es collec ed in Na- and Li-DNA ibe s
subme ged in e hanol solu ions. The cu es o Li-DNA ibe s in he whole concen a ion
ange s udied we e quali a i e iden ical o he PEG case wi h a single peak on a cons an
100
backg ound as seen in he igu e o Li-60% e hanol (black squa es). This is also he case
o Na-DNA o e hanol concen a ions up o 50%. Howe e , a 60% e hanol ( ed ci cles) a
ail appea s a he high empe a u e side o he peak making i app eciably asymme ic and
hin ing a he exis ence o a second, weake , con ibu ion o he mel ing cu e apa om he
main s ong peak. Fo Na-66% ibe s (blue iangles in he igu e) his second con ibu ion
o he mel ing cu e is pa en since he e is a smalle mel ing peak a highe Twi h espec
o he s ong main one.
Na-DNA ibe s showed some deg ee o A- o m con amina ion when subme ged in 60%
o highe e hanol solu ions (sec. 3.1.1 and sec. 4.2.2) while Li-DNA emained in B- o m o
he whole e hanol concen a ion ange s udied. These changes in he shapes o he mel ing
cu es o Na-DNA wi h inc easing e hanol concen a ion a e mos p obably ela ed wi h
he appea ance o A-con amina ion and he inc ease o he numbe o molecules in A- o m
as he e hanol concen a ion is inc eased. Wi hin his in e p e a ion, i is easonable o
assume ha mos o he molecules in he Na-66%-0.01 we e in B- o m and unde wen he
mel ing ansi ion wi h a mel ing empe a u e ≈63 ◦C. The ac ion o he sample in A
o m emained in he helical o m and mel ed a ≈70 ◦C( he cen e o he seconda y peak).
Two di e en mel ing empe a u es could be unambiguously compu ed o cu es exhibi -
ing wo clea and sepa a ed mel ing peaks. This is no he case in he samples o he p esen
s udy. All he seconda y peaks asc ibed o he mel ing o he A- o m domains a e ela i ely
e y small and supe imposed wi h he main peak. A mel ing empe a u e o A and B
domains could s ill be oughly es ima ed by i ing wo peaks o he cu e. Howe e , e en
o single peak cu es, iden i ying he mel ing empe a u e wi h he cen e o he peak can
in oduce e o s in he calcula ion [102]. In his wo k a singula Tm(calcula ed as explained
in sec. 2.2.5) was asc ibed o he double-peak samples. These alues should be unde s ood
as weigh ed a e ages be ween he Tmo domains in B and A con o ma ions o each sample.
Special ca e mus be aken i he Tm alues epo ed he e a e o be analyzed quan i a i ely.
Fo he quali a i e discussion p esen ed in his chap e he alues a e p obably su icien .
On he con a y, calcula ing he wid h o he double-peak samples as he ull wid h a
101
hal maximum o a single peak (as desc ibed in sec. 2.2.5) would be qui e meaningless. Fo
all he Na-DNA ibe s subme ged in e hanol he wid h o he ansi ion was calcula ed as
he empe a u e change necessa y o go om 25% o 75% open base pai s(using eq. 2.5).
Fo a single-peak mel ing cu e his is equi alen o ake he ull wid h a hal maximum
o he peak. This p ocedu e was used be o e, wi h calo ime y and o he echniques able o
access he ac ion o open base pai s, o compu e he wid h o he ansi ion [103].
Fig. 4.12b shows he alue o he mel ing empe a u e and he wid h o he ansi ion
o he Na-DNA case. The mel ing empe a u e dec eases om 0% un il 70% e hanol and
aises om 70% o 80% be o e dec easing again a 90%. Cau ion mus be applied when
aking in o conside a ion he inc ease in Tma 80% since only one poin cons i u es such
inc ease. Howe e , as explained p e iously (sec. 2.2.4) he p esen ed alues o Tma e he
a e age o he measu emen on h ee iden ical samples. The e o e we belie e his inc ease is
signi ican . The wid h o he ansi ion is oughly cons an un il a leas 50% e hanol and
d ops o highe concen a ions.
Fig. 4.12c shows he same da a o Li-DNA ibe s, in his case Tmdec eases mono onically
( he local maximum in Tmdoes no exis ) and he wid h inc eases signi ican ly a 70% e hanol
and hen d ops s eeply a 80%.
Fo he e hanol samples he main ac o s explaining he o e all e ec o he e hanol in
he mel ing empe a u e is dec easing o he wa e ac i i y and he dielec ic cons an o he
solu ion as p esen ed in sec. 3.3.3.
The beha io o Tmand he wid h o he ansi ion as a unc ion o he e hanol con-
cen a ion ound in his wo k a e quali a i ely iden ical o wha was epo ed by Rupp ech
e al. (sec. 3.3.3) o e y simila samples. The quan i a i e di e ence can be explained
by di e ences in sal concen a ion o he solu ions which a ec bo h Tmand wid h [103].
Rupp ech e al. also ound a B- o-A ansi ion in Na-DNA (consis en wi h he sca e ing
da a o p e ious sec ions). They e en sugges ed ha a ange o e hanol concen a ions exis
in which he ibe s a e a mix u e o B and A o m ( ig. 3.4a and [88]) which ela es o he
A/B con amina ion ound in he samples o his wo k.
102
(a) (b) Na-DNA
(c) Li-DNA
Figu e 4.12: a) Examples o calo ime ic cu es o Na−and Li−DNA ibe s subme ged in
e hanol solu ions. Mel ing empe a u e and wid h o he ansi ion o ibe s subme ged in
e hanol solu ions as a unc ion o he e hanol concen a ion ( / ).
103
The o al in ensi y o e e y empe a u e was i ed wi h he exp ession:
I(QH) = I1+I2+IAl,P b (4.7)
A0and Bwe e no i -pa ame e s. Thei alues we e calcula ed be o e i ing a gi en
cu e. Fo he D19 da a he a e age alues o he sca e ing signal o QH<0.6˚
A−1and
QH>3.4˚
A−1we e calcula ed and a line was d awn be ween he wo alues. A0and Bwe e
aken as espec i ely he in e cep and slope o ha line. Fo he WOMBAT da a, Bwas
se o ze o and A0was de e mined by a e aging he signal o QH<0.8˚
A−1. In addi ion,
o he WOMBAT da a he di use sca e ing was ep esen ed by a single ising s ep unc ion
so he e m anh(QH−Q2
s2) in eq. 4.5 ela ed wi h he declining s ep was no included.
The cu es o he PEG solu ions a oom empe a u e we e i ed using eq. 4.5. The
esul s can be seen in ig. 4.14a and 4.14b. The alues o he pa ame e s o his i (A1,Q1,
s1,Q2,s2) we e used as pa o he ini ial se o alues o i ing he DNA da a a oom
empe a u e using eq. 4.7. The es o ini ial alues we e chosen by isual compa ison.
Fo subsequen empe a u es a wo-s age p ocess was used in o de o ge an accu a e
i when he size o he B agg peak and he di use con ibu ion became compa able. Fo a
gi en empe a u e abo e oom T, he γ om he i o he p e ious empe a u e was used
o de ine a ange in QHcen e ed a ound he DNA B agg peak (Q0−0.8γ≤Q≤Q0+0.8γ).
In he i s s age he pa ame e s o he DNA B agg peak (eq. 4.4) we e ixed, da a inside
he p e iously de ined ange we e igno ed and eq. 4.7 was i ed using he esul s o he i
o he p e ious empe a u e as ini ial alues o he pa ame e s . In he second s age da a
ou side he ange we e igno ed, he pa ame e s o eq. 4.5 and 4.6 we e ixed o he i ed
alues o he i s s age and he DNA B agg peak was i ed wi h eq. 4.7. The wo-s age
p ocess was hen epea ed wice pe empe a u e. Each new i e a ion used he pa ame e s
o he p e ious i e a ion as ini ial pa ame e s o he i . A e 3 i e a ions he pa ame e s
we e s able.
Examples o he inal i s can be seen in ig. 4.14. The i ing is e y consis en bu should
be in e p e ed wi h ca e a high empe a u es, whe e he Lo en zian peak was so small in
110

compa ison wi h he di use con ibu ion ha he gene al i had ouble con e ging. A
hese empe a u es he alues o γand Q0we e ixed o he alues o he las empe a u e
in which he i con e ged and only I0was i ed.
Fig. 4.15 shows a ep esen a i e example o he empe a u e dependence o he pa ame-
e s o he double-s ep unc ion and o he cen e o he DNA B agg peak (Q0). The cen e
o he B agg peak shi s sligh ly o smalle Qs as he empe a u e aises ( ig. 4.15b) which is
consis en wi h he mal expansion and he change in he a e age base pai dis ance due o
he elaxa ion o he base s acking because o pa ial unwinding o he helix. Q0suddenly
d ops a T≈97 ◦C. This s eep dec ease could be associa ed o a pa ial un wis o he
helix due o he g ea numbe o uns acked bases a his high empe a u e. Wi h a sudden
un wis he a e age dis ance be ween adjacen base pai s will g ow as and so he cen e o
he B agg peak will dec ease. Howe e , a his high empe a u e he peak is e y small in
compa ison o he di use backg ound he e o e, as al eady men ioned, he in e p e a ion o
Q0and o he i ed pa ame e s mus be done wi h ca e. Rega ding he he pa ame e s o
he double-s ep, hei e olu ion wi h Tis easonable bu i is e y challenging o asc ibe a
physical meaning o hem.
The i ed alues o eq. 4.6 ( ela ed wi h he aluminum and lead B agg peaks) did no
change wi hin easonable limi s wi h Twhich is consis en wi h he ac ha no signi ican
changes we e expec ed om he Al o Pb in he ange o empe a u es s udied.
Fig. 4.16 shows he e olu ion o he A0pa ame e wi h empe a u e o all he samples.
A0(T) in his igu e is no malized by i s alue a T= 20 ◦C o allow easy compa ison
be ween samples. A0(T) desc ibes adequa ely he magni ude o he inc ease o he di use
sca e ing wi h T. The igu e p o es ha he di use con ibu ion ises close o he mel ing
empe a u e in e e y sample. The inc ease a he highes T eached is app oxima ely 20%
o he PEG6K-17% (measu ed a D19) and app oxima ely 5% o he es o he samples
(measu ed a WOMBAT) . I is likely ha his quan i a i e di e ence is due o he di e en
ins umen con igu a ions. The e a e wo ac o s likely o con ibu e o he di e ence:
The i s conce ns he collima ion be ween sample and analyse . D19 had no collima ion
111
(a) (b)
(c)
Figu e 4.15: Tempe a u e dependence o he pa ame e s o he double-s ep unc ion and he
cen e o he DNA B agg peak o he PEG6K-17% sample as ound by he i . a) A1, b)
Cen e s o he double s ep unc ion (Q1and Q2) and o he B agg peak (Q0). c) G adien s
o he double s ep unc ion (s1and s2).
112
Figu e 4.16: Pa ame e A0 om equa ion 4.5 as a unc ion o he educed empe a u e
(T/Tm calcula ed in Celsius) no malized by i s alue a 20 ◦C o each sample. A0is he
a e age o he in ensi y a low Qand ep esen s he magni ude o he di use con ibu ion.
The cu e o he PEG8k-20% sample is shi ed downwa ds by 0.05 uni s o cla i y.
while WOMBAT used an oscilla ing collima o . In p inciple, an oscilla ing collima o limi s
only he sca e ing gauge olume o he sample. Howe e , he di use sca e ing esembles, o
i s o de , incohe en sca e ing while he sca e ing angles o he B agg peaks a e eason-
ably well sel -collima ed. The WOMBAT oscilla ing collima o also limi s ins an aneously
he di e gence o he sca e ed beam o 0.5◦, hence educing an incohe en con ibu ion
ela i e o a cohe en signal. This pa ly explains he la ge di use signal in he D19 da a.
The second conce ns he kinema ic limi s on he ene gy in eg a ion o he neu on in-
s umen . Nei he WOMBAT no D19 had any means o analyze he inal ene gy o he
neu on. Bo h ins umen s he e o e in eg a ed o e neu on ene gy ans e s. The allowed
ene gy and momen um ans e s a e limi ed by he ene gy o he inciden neu ons, which
was 14.20 meV o D19 and 3.83 meV o WOMBAT. D19 he e o e in eg a ed o e a much
la ge ene gy window han WOMBAT. Fibe DNA has subs an ial spec al weigh om 2
o 25 meV [104] , and D19 will cap u e hese la ice dynamics whe e WOMBAT canno .
The dynamics o DNA will change subs an ially as he mel ing empe a u e is app oached,
gi ing a non-linea inc ease in he spec al weigh o all Qand p opo iona ely mo e di use
sca e ing in he D19 da a.
113
Fig. 4.16 also shows ha he alues o A0do no inc ease mono onically wi h empe a-
u e close o mel ing, pa icula ly o he PEG6k-17% (black squa es) and he PEG6k-20%
( ed ci cles) samples. The da a shows small peaks in A0which may also be obse ed in
ig. 4.13a and ig. 4.13b as e ical lines close o he empe a u e a which he B agg peak
disappea s. As p e iously s a ed, he empe a u e s abili y a he mel ing empe a u es o
hese samples was a he poo (sec. 2.4.1 and 2.4.1). The ampli ude o he di use sca e ing
inc eases s eeply wi h empe a u e in his ange. The pilo s udy [12] showed ha he mel -
ing ansi ion is, o some ex en , e e sible in hese samples gi en ha he mel ing is no
comple e. I is possible ha he a ia ions in A0a e coupled wi h he empe a u e s abili y,
and ha he inal egis e ed alues a e indica i e o he weigh ed a e age o he luc ua ing
in ensi y o e he du a ion o he measu emen .
Fig. 4.17 shows he i ed I0and γas a unc ion o empe a u e o he ou samples.
Fo all samples , he in ensi ies dec eases apidly and he peak e ec i ely disappea s o e he
ange 0.95 ≤T/Tm≤1.05. Fo he WOMBAT da a, he in eg a ed in ensi ies and wid hs
s ay oughly unchanged un il close o he mel ing empe a u e, as seen in p e ious s udies
on humidi ied ibe s [7, 8]. This sugges s ha , as o humidi ied ibe s, long segmen s o
DNA emain un il he e y las s ages o mel ing. These de ine he wid h o he B agg peak.
A he empe a u e whe e hese las segmen s dena u e, he in ensi y o he B agg peak
is so weak ha i is los in he di use sca e ing and any change in he wid h canno be
unambiguously de e mined om a i .
The PEG6k-17% sample measu ed on D19 shows a somewha di e en beha io . Bo h I0
and γinc ease s eadily be o e he Tm. This di e ence in he beha io o he i ed pa ame e s
wi h espec o he WOMBAT da a may be ela ed o he di e en in eg a ion o e neu on
ene gy ans e s o bo h ins umen s. An inc ease in he phonon dynamics wi h inc easing
empe a u e can mani es i sel as an inc easing wid h in he ails o a B agg peak. Such
e ec would be mo e d ama ic in D19 due o he expanded ene gy in eg a ion. Al hough
a neu on inelas ic sca e ing measu emen would be necessa y o p o e he hypo hesis, i
appea s likely ha he inc easing I0and γwi h empe a u e seen on D19 a e due o he
inc eased dynamics o he ibe DNA as mel ing is app oached.
114
(a) PEG6K-17% (b) PEG6K-20%
(c) PEG8K-15% (d) PEG8K-20%
Figu e 4.17: Compa ison be ween heo y and expe imen o he da a o he sample sub-
me ged in PEG. PEG6k-17% a) was measu ed on D19, he o he samples b)-d) on WOM-
BAT. A educed empe a u e, T/Tm(calcula ed in Celsius) was used whe e Tmis he mel ing
ansi ion o he sample. In each panel he h ee uppe cu es ela e o he scale in he le ,
hey a e he i ed in eg a ed in ensi y, I0(blue open ci cles), he heo e ical in eg a ed in-
ensi y ( hick ed line) and he ac ion o closed base pai s calcula ed wi h calo ime y (eq.
2.6) o a co esponding sample (black dashed line), he i ed in eg a ed in ensi ies ha e
been di ided by a bi a y numbe s o easy compa ison. The lowe cu es ela e o he scale
in he igh , hey a e γ, he i ed wid h o he peak (black close ci cles), and he heo e ical
wid h o he peak ( hin ed line).
115

Analysis using he Pey a d-Bishop-Dauxious model
The PBD model was used o make a quan i a i e analysis o he i esul s, ollowing a
p e iously- epo ed p ocedu e [7, 94]. The model can be used o calcula ed he p obabili y
ha a base pai o a gi en sequence is closed a a gi en empe a u e. The p obabili y o
a gi en size dis ibu ion o closed segmen s can hen be de e mined, as explained in sec.
3.4.1. The expec ed di ac ion pa e n, S(Q), om he sequence can hen be calcula ed (as
p esen ed in sec. 3.4.1) and compa ed o he expe imen s.
The pa ame e s o he Hamil onian he model uses o desc ibed he DNA molecule (eq.
3.17) we e e ined by compa ing he calcula ed mel ing cu e wi h he da a om calo ime y.
A segmen o he genome o A lan ic Salmon epo ed p e iously [105] (10000 bases
s a ing a si e 50000) was chosen o he calcula ion. In he modeling Wwas assumed o be
he same o all combina ions o adjacen base pai s, which has been shown o be easonable
o desc ibing he mel ing cu es o long DNA molecules [7, 92]. The DNA sequence was
aken in o accoun only o he calcula ion o he in a-pai po en ial Vj.
All alues o he pa ame e s o he Hamil onian used o model he da a, excep o DAT
and DGC, a e he same as p e iously used in he s udy o humidi ied ibe s [7]. They a e
shown in able 4.5. DAT and DGC ep esen he ene gy ba ie o base pai dissocia ion and
hus hey a e he main ac o in se ing he Tmo he heo e ical mel ing cu e. As shown
in ig. 4.9b, he mel ing empe a u e when he ibe s a e subme ged in he PEG solu ions
inc eases wi h PEG concen a ion. Thus DAT and DGC needed o be scaled o ep oduced
he mel ing empe a u e o each sample. The alues o he dep h o he Mo se po en ial
shown in able 4.5 (DAT,95,DGC,95) wi h he chosen sequence and pa ame e s co espond o
Tm= 95 ◦C. Fo a sample wi h a Tm=Tm,x in Celsius he alue o DAT was scaled by:
DAT,x =DAT,95(Tm,x + 273
95 + 273 ) (4.8)
and an analogous exp ession was used o he alue o DGC.
116
Pa ame e s Value
a3.4˚
A
yc1.5˚
A
k4.5 10−4eV/˚
A2
ρ50
b0.2 ˚
A−1
αAT 4.2 ˚
A−1
αGC 6.9 ˚
A−1
DAT,95 0.13150 eV
DGC,95 0.17150 eV
Table 4.5: Pa ame e s used in he PBD model.
Sample <Λ2>(˚
A)
PEG6k-17% 0.45
PEG8k-15% 0.35
PEG8k-20% 0.33
PEG6k-20% 0.33
Humid ibe s 0.18
Table 4.6: S anda d de ia ion o he dis ance be ween consecu i e base pai s used o calcu-
la ed he S(~
Q) o each sample.
Rega ding he calcula ion o he heo e ical S(Q) (sec. 3.4.1); a alue o <Λ2>= 0.18
˚
A, epo ed by La e y e al. [106] , was used o model he mel ing o humidi ied DNA
in p e ious wo ks [7]. This alue ga e wid hs o he B agg peak ha we e oo small in
compa ison o he expe iemn al alue o he subme ged samples. <Λ2>was inc eased o
model he cu en da a. The alues used can be ound in able 4.6.
I is unlikely ha he e ec s o he PEG can di ec ly modi y he s anda d de ia ion o
he dis ance be ween base pai s along he molecule. Mo e likely, he inc ease o <Λ2>
accoun ed phenomenologically o o he diso de e ec s, such as an inc eased a ia ion o
117
he alignmen o he molecules, when he ibe s we e subme ged.
The Debye-Walle ac o , ∆, is a unc ion o bo h < σ2>and <Λ2>and i is possible
ha he inc eased B agg wid hs a e a leas pa ly due o he mal luc ua ions ha we e
no linea wi h empe a u e. Howe e , wi hou inelas ic sca e ing da a i is no possible o
say whe he he la ge wid hs we e due o inc eased s uc u al diso de , inc eased he mal
luc ua ions, o a combina ion o bo h ac o s.
The calcula ed S(~
Q) o each Twas i ed wi h eq. 4.4 o de e mine alues o I0and γ
as a unc ion o T ha could be compa ed o he expe imen al da a.
Fig. 4.17 shows a compa ison o he expe imen al and heo e ical in eg a ed in ensi ies
and wid hs o he peaks o each sample along wi h he ac ions o open base pai s calcula ed
by calo ime y. The da a a e plo ed as a unc ion o educed empe a u e, T/Tm, as he e
a e di e ences be ween he empe a u es eco ded wi h neu ons and calo ime y due o
di e en sample en i onmen s.
O e all, he model ma ches all he da a quan i a i ely. The ag eemen is excellen o
he samples measu ed on WOMBAT. While he magni udes o he model ma ch he D19
da a and he model does p edic a linea inc ease in wid h wi h empe a u e, he model ails
o adequa ely desc ibe he g adien o he inc easing wid h and o he in eg a ed in ensi y
wi h empe a u e below Tm. This may be an aspec o he modelling ha does no ully
cap u e he DNA phonon dynamics which, combined wi h he expanded ene gy in eg a ion
on D19, a e he possible cause o he inc eases in I0and γ. Howe e , he magni udes o he
in ensi ies and wid hs a e ma ched and modelling may be ega ded as sa is ac o y.
Discussion
The da a a e an imp o emen on he pilo s udy o DNA ibe s subme ged in PEG solu ions
[12]. The use o PEG solu ions allowed he ibe s o swell wi hou losing hei o ien a ion.
The neu on expe imen was able o ollow he e olu ion o he B agg peak wi h empe a u e.
The PBD model was able o desc ibe he da a, and he desc ip ion was pa icula ly good
118
o he WOMBAT da a.
The p e ious s udy showed ha he ansi ion is, o an ex en , e e sible [12]. In his
sense, i is simila o a c i ical phase ansi ion. The di use sca e ing in ig. 4.16 inc eases
apidly a he mel ing empe a u e. The PEG6k-17% and PEG6k-20% samples show de-
pa u es om a mono onic inc ease in he di use sca e ing in ensi y close o he mel ing
empe a u e. These measu emen s su e ed om ela i ely la ge empe a u e luc ua ions
a ound he mel ing empe a u e, and i is likely ha he eco ded in ensi y a ia ions a e
a esul om he ime-a e age o he concomi an ly luc ua ing di use signal. The mea-
su emen s wi h be e empe a u e s abili y a he mel ing ansi ion did no show his
anomalous in ensi y a ia ions.
These a ia ions do no appea o be p esen in he in eg a ed in ensi ies o he B agg
peaks o he a ec ed samples. A B agg peak is due o cohe en sca e ing om long- anged,
ime-a e aged o de , while he di use sca e ing is mo e incohe en in na u e. I may be
ha he di use sca e ing is domina ed by he DNA dynamics, pa icula ly o open base
pai s, and i s empe a u e dependence is d i en by changes in he spec al weigh . This
hypo hesis is consis en wi h he obse a ion ha D19, wi h he la ge ene gy in eg a ion,
shows a la ge inc ease in he di use sca e ing.
The PBD model uses one se o pa ame e s o DNA and is able o sa is ac o ily ep oduce
all he da a despi e he change in con inemen b ough abou by he osmo ic p essu e. This
shows ha he model is, wi hin easonable limi s, insensi i e o con inemen o he DNA
and es ablishes ha he analysis shown in p e ious wo ks [7, 8, 94] is sound.
I is no ewo hy ha mos o he pa ame e s in able 4.5 a e he same as hose o he
humidi ied ibe s [7, 94] and o genomic DNA in solu ion [92]. The only di e ences lie in
he alues o DAT and DGC. Rega ding he model, he unique e ec o he subme sion o
he ibe s in PEG solu ions on he mel ing ansi ion seems o be in adjus ing he appa en
dissocia ion ene gy o he base pai s.
119
be o e he mel ing empe a u e (T/Tm≈0.9) is obse ed. This looks signi ican ly di e en
ha he s eady (linea like) inc ease o he wid h o he PEG sample measu ed in D19 ( ig.
4.17a).
Discussion
The expe imen al da a p esen ed in his sec ion p o es ha he ansi ion can be moni o ed
equally well wi h neu on sca e ing in samples subme ged in deu e a ed e hanol solu ions
wi h he ad an age o he educed incohe en sca e ing wi h espec o he samples wi h
p o ona ed PEG solu ions.
The inc ease in he di use sca e ing (quan i ied by he pa ame e A0plo ed in ig. 4.21)
is quali a i ely iden ical o he da a o PEG6K-17% which was also measu ed in D19. This
indica es ha he la ge inc ease o he di use sca e ing in he PEG6K-17% sample as T
aises is no a sample-speci ic beha io and ein o ces he idea ha he magni ude o his
inc ease is linked o he ins umen al con igu a ion.
The double-s ep unc ion seems o be in gene al less op imal o desc ibed he backg ound
o he e hanol samples. Howe e , he i o wo samples (Na-66%-0.01 and Li-60%) is
ega ded as sa is ac o y and u u e a emp s o ep oduce he expe imen al da a wi h he
PBD model will be pe o med.
I is expec ed ha he pa ame e s necessa y o model he da a o hese samples will di e
signi ican ly om he PEG. The e ec i e po en ial o he binding be ween he bases ( ela ed
wi h DAT and DGC pa ame e s) is a ec ed by he epulsion be ween he DNA s ands which
is educed by he p esence o ions a ound he DNA. This elec os a ic e ec is s ongly
a ec ed by he dielec ic cons an o he sol en which changes wi h he amoun o e hanol
added o he solu ion.
Rega ding he s acking o he bases, i is known o highly depend on he hyd ophobic
in e ac ions [23] which mus change in he p esence o e hanol. Fo he Na-66%-0.01 sample
he case is e en mo e complex. A way o include he wo peak mel ing in he ela i ely
126

(a) Na-60%-0.1 (b) Na-66%-0.01
(c) Li-60%
Figu e 4.22: Pa ame e es o he i as a unc ion o empe a u e o he e hanol samples:
in eg a ed in ensi y (I0, open blue ci cles) and wid h (γ, closed black squa es) o he DNA
B agg peak placed a QH≈1.87 ˚
A−1; pa ame e A1o he double-s ep unc ion ( ed i-
angles) which models he di use sca e ing. The dash black line ep esen s he ac ion o
closed base pai s ( DS) calcula ed by calo ime y wi h eq. 2.6.
127
simple PBD model mus be ound. This would be a oppo uni y o es he limi s o he
model.
Fu u e expe imen al wo k will be ocused on Li-DNA ibe s since ha will elimina e he
A-con amina ion which may hinde he s eng h o he conclusions.
O e all, he empe a u e dependence o he e hanol samples is consis en wi h p e ious
da a bu shows some speci i ies ha , we belie e, jus i y u he expe imen s and da a analysis
in hese kind o samples.
128
Chap e 5
Widom-601 in es iga ed by SAS
5.1 Room empe a u e s udy
The bending and lexibili y o DNA a e o c i ical impo ance o many o i s biological
unc ions like gene egula ion, p o ein-DNA in e ac ions and DNA packing in i uses and
euka yo e cells.
Howe e he ac ual magni ude, na u e and o igin o DNA lexibili y is s ill an open
p oblem. Kahn has e iewed ecen ly expe imen al wo ks on bending and wis ing o DNA
which used DNA ing closu e, a omic o ce mic oscope and op ical weeze s me hods [107].
Disc epancies in he esul s o he di e en echniques showed ha he lexibili y o DNA is
a om being unde s ood [107].
The magni ude o he lexibili y o DNA is usually accoun ed o by he pe sis ence leng h
(lp) which, wi hin he K a ky-Po od model (sec ion 3.4.2), is de ined as he cha ac e is ic
leng h in he co ela ion o he di ec ion o he segmen s ha desc ibe he polyme . The lp
o DNA was ini ially hough o be ≈500 ˚
A which would imply ha DNA is ha d o bend
o e sho e dis ances. Howe e ecen cycliza ion expe imen s [108], luo escence esonance
ene gy ans e measu emen s [109] and small angle X- ay sca e ing [110] pe o med on sho
129
Figu e 5.1: The 145 base-pai sequence in es iga ed. The agmen in he ec angle is he
s ong posi ioning elemen , cha ac e is ic o his sequence. The TA agmen s in ed a e he
possible kink posi ions conside ed in he model.
chain DNA e ealed ha DNA is likely o bend spon aneously o e much sho e dis ances
han 500 ˚
A.
The wo m-like chain model is a con inuous e sion o he K a ky-Po od model and has
been widely used o desc ibing long chain DNA. Howe e , he p e iously men ioned s udies
sugges ha he wo m-like chain may no be applicable o sho chain sequences. Also,
hese s udies poin o he possibili y ha he pe sis ence leng h depends on he leng h o
he DNA.
The close-packing o DNA inside he cell nucleus is a pa icula in e es ing e en in which
he lexibili y o DNA is key o he biological unc ion. The Widom-601 sequence, shown in
ig. 5.1, has a s ong his one posi ioning agmen which has g ea a ini y o wind a ound a
his one oc ame o o m a nucleosome which is a essen ial s ep o he packing o he genome
in he cell nucleus.
C ick and Klug ied o add ess he mechanism behind he conside able olding he DNA
unde goes o o m he ch oma in. They showed in a pionee ing s udy ha DNA can o m
sha p kinks wi hou a majo dis u bance o i s s uc u e [111]. Indeed, Kinks ha e been
130
ound in he s uc u e o sho DNA chains w apped a ound a nucleosome [112] bu C ick
and Klug also hypo hesized ha kinks could occu in solu ion. This hypo hesis was ne e
de ini i ely con i med.
The Widom sequence has been p e iously s udied unde he e ec s o he s ong in e ac-
ions wi h his one p o eins, [13] o a ached o gold nanopa icles [110]. In es iga ion o he
Widom sequence ee in solu ion may p o ide he answe o he ques ion o whe he some
in insic mechanical and/o geome ical p ope ies o DNA a e esponsible o he s ong po-
si ioning e ec . The undamen al dilemma is whe he he w apping o DNA in nucleosomes
equi es a e y high elas ic ene gy, as he wo m-like chain model sugges s, o whe he he e
is a sequence-dependen ea u e o DNA, like a enhanced local lexibili y a he posi ioning
si e, ha could explain o a ou he posi ioning e ec .
The e o e he aim is o s udy DNA molecules con aining he Widom sequence dissol ed
in solu ion. Small angle sca e ing can p obe he shape o he molecules dispe sed in he
solu ion and, when used wi h an app op ia e model, he geome y and lexibili y o he
molecules can be es ima ed.
2H2O-based solu ions o Widom-601 DNA molecules we e p epa ed as desc ibed in sec.
2.1.2. Neu on and X- ays small angle sca e ing (SANS and SAXS espec i ely) da a o
hese samples we e eco ded and educed as desc ibed in p e iously (sec. 2.5.2, 2.4.1, 2.4.2
and 2.5.3). The use o he wo echniques ga e independen and complemen a y da a. SAXS
gi es a la ge signal om a much smalle mass o DNA bu X- ays a e well-known o damage
DNA du ing long exposu es. X- ay damage can hinde he expe imen bu i can also be
used as a alida ion o he analysis om undamaged-DNA da a as i will be shown below.
Neu ons a e non-ionizing adia ion and he damage hey cause o he sample is negligible.
Howe e , since he a ailable luxes a e many o de s o magni ude smalle , a g ea e mass o
DNA is needed o ob ained a usable signal.
Figu e 5.2a p esen s he SANS and SAXS cu es (I(q)) a oom empe a u e. Fig. 5.2b
shows he co esponding pai dis ibu ion unc ion (P( )), calcula ed as desc ibed in sec.
2.5.2.
131

(a) (b)
Figu e 5.2: a) SANS and SAXS da a a oom empe a u e; b) hei co esponding P( ).
The P( ) ound by bo h echniques is quali a i ely simila bu he e a e some disc epan-
cies. These a e due o he di e ences in sca e ing leng h o neu ons and X- ays which a ise
om he di e en in e ac ion mechanism o bo h adia ions wi h ma e (sec. 2.3.2). X- ays
a e mo e sensi i e o hea ie elemen s since he sca e ing leng h o hem is p opo ional o
he numbe o elec ons in he a om. Fo neu ons hyd ogen (which has a nega i e sca e ing
leng h) has he highes con as wi h he deu e a ed sol en and he e o e he neu on da a
a e mo e sensi i e o he dis ibu ion o hyd ogen in he sample.
The wo da a se s show peaks a ound 20 ˚
A. Fo he X- ay da a he peak is ela ed o he
phospha es in he ou side o he double helix which a e 20 ˚
A apa . The DNA has many
p o ons dis ibu ed along i s s uc u e, hus o sho dis ances neu on sca e ing o DNA is
well app oxima ed by he sca e ing by a bulk cylinde wi h a diame e o 20 ˚
A. Bo h P( )
cu es show a a he la egion be ween 100 and 140 ˚
A. Fo > 140 ˚
A he P( ) dec ease
s eeply un il hey each a pla eau om 300 o 390 ˚
A be o e going o 0 o > 400 ˚
A . The
oscilla ions in he 300−390 ˚
A ange in he SAXS da a may be an a e ac due o unca ion
in he measu ed Q ange which en ails missing Fou ie componen s in he P( ) calcula ion.
Howe e , he pla eau is p obably a eal ea u e since i appea s in bo h se s o da a.
The calcula ion o P( ) using he s uc u e ac o is a well-es ablished p ocedu e, which
is based on a p ecisely de ined ma hema ical connec ion be ween he unc ions (sec. 2.5.2).
Howe e , de i ing he shape o he sca e ing molecules om P( ) is no an unambiguous
132
Figu e 5.3: Rep esen a i e examples o he ou pu o he DAMMIF p og am. The dummy
a oms show he es ima ion o he mos likely shapes o he DNA in solu ion.
p ocess. The DAMMIF p og am [113], included in he ATSAS package, was used as a i s
s ep. DAMMIF s a s om he P( ) unc ion and uses simula ed annealing o ind he
shape o a se o dummy objec s which ep oduce he P( ). DNA can ha e a g ea a ie y
o con o ma ions in solu ion and mul iple uns lead o di e en inal shapes. DAMMIF
con e ges o ei he s ongly cu ed s uc u es o b anched solu ions when he P( ) shown
in ig. 5.2b is s udied. Fig. 5.3 shows ep esen a i e examples o bo h cases. The in si u
UV-Vis measu emen s collec ed in he SANS sample (sec. 2.4.1) ensu es ha he molecules
we e no pa ially dena u ed a oom empe a u e. The e o e b anching om indi idual
molecules is no expec ed. The DAMMIF solu ion could s ill be explained i he sample
con ains a mix u e o weakly cu ed and sha ply ben molecules. In his case, he DAMMIF
esul s would be due o a supe posi ion o bo h con o ma ions.
The ab-ini io shape econs uc ion ha DAMMIF used is no conclusi e because i does
no include a p io i knowledge o he molecula p ope ies. In o de o ex ac u he
in o ma ion om he sca e ing da a a heo e ical model was de eloped.
An ex ension o he K a ky-Po od model ([96] and sec. 3.4.2) was used o analyze he
P( ) cu es. The model desc ibes he con o ma ions ha he backbone o he DNA can
adop bu no he in e nal s uc u e o he molecule. A schema ic o he model used can be
133
Figu e 5.4: Schema ic o he ex ended K a ky-Po od model used. The op pa shows how
he base pai s and segmen s we e numbe ed and he bo om shows he de ini ion o he
bond and o sional o a ion angles.
ound in ig. 5.4. The model desc ibes a single DNA molecule as consis ing o N+ 1 objec s
ep esen ing base pai s. They a e sepa a ed by Nsegmen s o leng h a= 3.34 ˚
A which
is he a e age base pai dis ance in B o m DNA. The bond angles be ween he segmen s
connec ing he pai s may a y a each base pai . The local bending angle a si e n, be ween
segmen s n−1 and n, is θn. To sional o a ion is accoun ed o by means o a second se
o angles, Φn, gi ing he dihed al angle be ween he plane con aining segmen s n−1 and n
and he plane con aining segmen s nand n+ 1.
The model allows o compu e a Hamil onian which accoun s o he he mal luc ua ions
by means o he bending and o sional ene gy. The Hamil onian is gi en by:
H=
N−1
X
n=1
Kn[1 −cos(θn−θ0n)] +
N−1
X
n=2
Cn[1 −cos(Φn−Φ0n)] (5.1)
whe e θ0nand Φ0na e local equilib ium alues o he bending and o sional angles which
can be di e en om ze o, Knand Cna e cons an s ela ed wi h he bending and o sional
ene gy. Dimensionless a iables we e used in he calcula ions wi h he model. Dis ances
we e measu ed in uni s o a, and empe a u e was exp essed in ene gy uni s ela i e o kBT
134
a oom empe a u e. Thus T= 1 gi es he p ope ies o DNA a oom empe a u e.
Fo any gi en con o ma ion o he model a heo e ical P( ) can be de e mined by pu ing
a uni sca e ing cen e a each base pai posi ion. This is a good app oxima ion o he
SAXS da a because he X- ay sca e ing om a base pai is domina ed by he phospho ous
a oms whose con ibu ion ( o > 40 ˚
A) can be e ec i ely mapped on o he cen e o he
base pai . Conside ing he base pai as a uni sca e ing cen e is a wo se app oxima ion o
he neu on da a because neu ons a e mo e sensi i e o he dis ibu ion o p o ons which is
much mo e homogeneous h oughou he molecule wi h espec o he phospho ous a oms.
The e o e he heo e ical P( ) we e compa ed o he SAXS da a which, in addi ion, ha e
be e signal o noise a io han SANS.
The da a we e i s modeled wi h he classical K a ky-Po od model which has Cn=θ0n=0
and assumes Kn=K=cons an o e e y segmen . In his si ua ion he pe sis ence leng h
is lp=Ka. A pe sis ence leng h o 500 ˚
A co esponds o K= 150. Fig. 5.5 shows a
compa ison be ween he expe imen al da a om SAXS a oom empe a u e and he esul
o he calcula ion o P( ) wi h hese pa ame e s (black line). This calcula ion has a e y
poo esemblance o he expe imen al da a. The model gi es a a be e ag eemen i lp
is dec eased o 60 ˚
A. Howe e , such a sho pe sis ence leng h seems ai ly un ealis ic. I
he molecules we e single s anded his pe sis ence leng h could be adequa e bu he in si u
UV-Vis abso p ion measu emen s pe o med con i med ha he sample was in helical o m
a oom empe a u e. This sugges s ha , a leas o sho molecules (145 bp molecules),
DNA canno be modeled as a homogeneous K a ky-Po od polyme which ag ees wi h he
conclusions o he cycliza ion expe imen s [108].
I is no possible o pe o m a e inemen o he model wi h all he pa ame e s ee because
he pa ame e space is oo la ge. A wo-s ep p ocess was adap ed o ci cum en his di icul y.
Fi s , a signi ican sample o geome ic con o ma ions able o ep oduce he expe imen al
P( ) was ound. Then, pa ame e s able o gene a e hese geome ical con o ma ions when
he model was he malized we e explo ed.
Mon e-Ca lo simula ions we e use o gene a e a la ge numbe o andom con o ma ions
135
(a) (b)
Figu e 5.8: (a) In si u UV-Vis abso p ion as a unc ion o empe a u e. (b) P( ) om SANS
a 25 and 79 ◦C.
espec o he cen e o he molecule. Fo he SAXS/SANS expe imen and o he model
he wo ends o he molecule a e indis inguishable, he e o e he 57 and 88 si es a e almos
equi alen . This is consis en wi h he ac ha models wi h he kink a n= 57 gi e also
good esul s. Whe e e he kink was placed, he bes ag eemen wi h he expe imen was
ound wi h θK= 95 ◦in good ag eemen wi h he kink angle p edic ed by C ick and Klug
[111].
The sca e ing om he DNA solu ion con aining he Widom sequence was measu ed in
unc ion o empe a u e wi h in si u UV-Vis spec oscopy as desc ibed in p e ious chap e s
(sec. 2.4.1). Tempe a u e-dependen da a will be discussed ex ensi ely in he nex sec ion
bu i is in e es ing o highligh he e some aspec s o he da a which ein o ce he conclusions
o he s udy wi h he model.
Fig. 5.8a displays he UV-Vis abso bance o he sample in he 260 nm line which is
usually used as e e ence o ollow he uns acking o he base pai s due o empe a u e
[116]. Fig. 5.8b shows a compa ison o he P( ) o he SANS da a a 25 and 79 ◦C . P( )
clea ly changes due o he inc ease in empe a u e, i inc eases in he ange 80 o 200 ˚
A and
dec eases o almos 0 o alues g ea e han 300 ˚
A. The UV-Vis da a show ha a ound 20%
o he base pai s a e opened a 79 ◦C. The changes obse ed wi h espec o oom Ta e
142

ela ed wi h he onse o he mel ing ansi ion and an inc ease o he he mal luc ua ions
o he molecules.
Fo he SAXS da a he measu emen s showed a dependence on he exposu e ime. This
was no obse ed in he neu on da a wi h simila exposu e imes. Fig. 5.9 shows h ee da a
se s, one a 23 ◦C and wo a 70 ◦C. The h ee da a se s we e measu ed on 2 aliquo s o
he same sample. One aliquo was measu ed o one hou a oom empe a u e o ob ain
he da a se labeled as 23 ◦C. Then his aliquo was he malized a 70 ◦C (wi h he beam
shu down) and measu ed o ano he hou o ob ain he da a se labeled as ”70 ◦C, sho
exposu e”. The e o e be o e eco ding he sho exposu e da a he sample was exposed
o X- ays o 1 hou . The second aliquo was measu ed o one hou a h ee di e en
empe a u es be o e being he malized a 70 ◦C o measu ing he da a labeled as ”70 ◦C,
long exposu e”. The e o e, be o e eco ding he long exposu e da a he sample was exposed
o X- ays o 3 hou s.
The sho exposu e da a ( ed line in 5.9 ) ag ee quali a i ely wi h he high empe a u e
SANS da a o ig. 5.8b, showing changes wi h espec o oom empe a u e happening in a
simila ange o Qwi h a simila magni ude. The long exposu e da a (blue line in ig. 5.9)
a e e y di e en om bo h he sho exposu e SAXS da a and he high empe a u e SANS
da a. I is belie ed ha X- ay damage due o he ela i ely long exposu e ime is he cause.
A X- ay luxes as low as he one used in his s udy he main mechanism by which X- ays
damage DNA is single s and b eaking due o ee adicals gene a ed by abso p ion o he
X- ays by he bu e [117]. Single s and b eaking will signi ican ly inc ease he lexibili y o
he DNA molecules which can explain he changes on he expe imen al P( ) as a unc ion
o exposu e ime. This p oblem is no p esen in he neu on da a since neu ons a e no
ionizing adia ion.
A con o ma ional sea ch was epea ed using P( ) om he long exposu e da a (blue
cu e in ig. 5.9). The ma ching o he a e age P( ) o he 103selec ed con o ma ions o
he expe imen al da a was again sa is ac o y and much be e han ials wi h he classic
K a ky-Po od model, e en i o sional igidi y was included ( ig. 5.10a). Fig. 5.10b shows
143
Figu e 5.9: The P( ) a 23 ◦C and 70 ◦C as a unc ion o ime o exposu e o X- ay adia ion.
The sho exposu e da a is he esul o a measu emen a e he sample was exposed o X-
ays o 1 h. The long exposu e da a is he esul o a measu emen on an iden ical sample
a e he sample was exposed o 4 h.
an his og am o he θn o he selec ed con o ma ions.
In compa ison o he oom This og am ( ig. 5.6a) he his og am o hese da a shows
many mo e si es in which θncan be la ge. Al hough he e is s ill a gap be ween he la ge
and small θn alues, he dis ibu ion o θnis much mo e homogeneous han in he oom T
case. This can be explained by he single s and b eaks caused by he X- ay damage which
would inc ease he local lexibili y d ama ically and c ea e a mo e con inuous dis ibu ion
o bending angles. The diag am on he igh o ig. 5.10b s ill shows a maximum in he
90◦-140◦, he e o e a kink seems o pe sis in hese condi ions.
In summa y, he analysis o he sca e ing da a sugges ed he exis ence o kinked Widom-
601 DNA molecules in he solu ion a oom empe a u e. The p esence o a gap be ween
he low and high bending angles nea he cen e o he molecules, obse ed in he esul s
o he con o ma ional sea ch, p o es ha an enhanced local bending lexibili y o he DNA
molecules is no enough o explain he sca e ing da a. Complemen a y c yomic oscopy
expe imen s [118], able o p o ide di ec imaging, could pe haps con i m his esul and
alida e u he he kink hypo hesis made by C ick and Klug.
144
(a)
(b)
Figu e 5.10: a) Same as ig. 5.6a o he 103con o ma ions ha p o ide he bes ma ching
wi h long-exposu e SAXS da a. b) Black ci cles a e he SAXS P( ) measu ed in a sample
a 70 ◦C a e a long exposu es o X- ays; he ed line is he a e age P( ) o he 103
con o ma ions which p o ided he bes ma ch o he expe imen al da a; he ull black line
shows he P( ) calcula ed wi h he polyme model wi h pa ame e s: Kn= 150, θ0n= 0,
Cn = 0; he dashed black line is he P( ) o he same model i one akes in o accoun he
o sional igidi y (Cn = 2,φ0n= 0).
145
The esul s sugges ha , besides ene ge ic e ec s in he in e ac ion be ween DNA and
his one, mechanical e ec s may con ibu e o posi ioning. A kink in DNA would localize he
his one oc ame ela i e o he DNA and con ibu e o he binding. This in es iga ion can
also con ibu e o he open deba e on he leng h-scale dependence o he DNA pe sis ence
leng h. In insic cu a u e e ec s a e age ou o long DNA molecules in expe imen al
s udies. Howe e , ha is no he case o sho molecules and his can esul in a educ ion
in he obse ed expe imen al pe sis ence leng h o sho DNA molecules.
5.2 Tempe a u e-dependen s udy
I has long been known ha he pe sis en leng h o DNA dec eases as empe a u e ises
[119, 120]. Theo e ical e o s ha e a emp ed o link he empe a u e dependence o lp
wi h he he mally-induced base pai openings. Models which do no include he openings
p edic ha lp a ies as 1/T, which disag ees wi h expe imen s [120]. Theodo akopoulos
and Pey a d ha e included luc ua ion openings using a combina ion o he K a ky-Po od
and he PBD models [15]. The DNA molecules we e desc ibed wi h an inhomogeneous
K a ky-Po od model wi h so and ha d join s co esponding o open and closed base pai s.
S a is ical in o ma ion abou he s a e o each pai was p o ided by he PBD model [9]. Such
an app oach can be used o s udy he sequence e ec s on local lexibili y [121] which may
ha e impo an biological consequences. Mo eo e , he link be ween luc ua ional openings
and local lexibili y p o ides e idence ha he dynamical cha ac e o DNA is e y impo an
o he desc ip ion o he molecule, e en a empe a u es well below he mel ing ansi ion.
Sca e ing da a we e used o y o expe imen ally es his heo y. The samples used in
sec. 5.1 we e hea ed and hei empe a u e-dependen small angle sca e ing was eco ded,
wi h in si u UV-Vis abso p ion spec oscopy o he SANS expe imen . SAXS da a p esen ed
he e was eco ded in samples which we e exposed o X- ay o a maximum o one hou so
he e ec o he adia ion damage can be neglec ed.
The lpo he molecules can be es ima ed by i ing he small angle sca e ing cu es
146
wi h an app op ia e model. Theo e ical p edic ions o lpcan be compu ed as in [15] wi h
he ad an age ha he sequence o sho a i icial DNA is known and so he calcula ion o
he s a is ical con o ma ions o he molecules wi h he PBD model includes no a bi a y
pa ame e s.
5.2.1 SANS
Fig. 5.11a shows an example o he SANS cu e o he DNA solu ion a oom empe a u e.
SANS da a o he bu e solu ion, measu ed unde iden ical condi ions, a e also shown. The
signal om he bu e is ea u eless and he signal om he DNA appea s mos ly a low Q
due o he signi ican size o he molecules (145 base pai s ela es o a leng h o a ound 485
˚
A).
Fig. 5.11b shows ep esen a i e examples o he SANS cu es a low and high empe -
a u e. The mos pa en change wi h empe a u e is an inc ease o he magni ude o he
in ensi y a la ge Qas empe a u e ises. Fig. 5.11c shows he mean in ensi y o he sca -
e ing o Q > 0.17 ˚
A−1 o he DNA and o e he whole Q ange o he bu e plo ed as
a unc ion o empe a u e. The bu e ollows he same end as he sample, so he inc ease
in he sca e ing is no caused by he DNA molecules bu by empe a u e- ela ed changes
in he sol en .
Fig. 5.11d show he ep esen a i e cu es no malized by he a e age in ensi y o he
cu e o Q > 0.17˚
A−1. Once he di e ence in le el is accoun ed o he cu es show a qui e
simila shape e en a he highes empe a u e eached (97◦C) whe e he UV-Vis abso p ion
indica es ha a ound 90% o he base pai s a e open ( ig. 5.8a). Wi h only 10% o he
molecule in he helical o m, he molecule is expec ed o be ex emely lexible in compa ison
wi h he oom empe a u e molecules.
Al hough no immedia ely ob ious, he DNA signal does change wi h T. Fig. 5.12a
shows he esul o di iding he da a a each empe a u e by he da a a 15 ◦C . The di ided
da a we e i ed wi h s aigh lines. The g adien s o he lines clea ly change wi h T. Fig.
147

(a) (b)
(c) (d)
Figu e 5.11: a) SANS cu e o he DNA solu ion and o he bu e he DNA was dissol ed in
a oom empe a u e in log-log scale. b) Rep esen a i e SANS cu es o he DNA solu ion a
di e en empe a u es in log-log scale. c) Value o he a e age in ensi y o Q > 0.17˚
A−1 o
he DNA sample and o e he whole Q ange o he bu e as a unc ion o empe a u e. d)
Same cu es o panel b) no malized by he a e age in ensi y o he cu e o Q > 0.17˚
A−1,
e o ba s we e emo ed o he sake o cla i y.
148
5.12b shows he g adien o he linea i s as a unc ion o empe a u e alongside he UV-Vis
abso bance o he DNA.
The g adien inc eases wi h inc easing empe a u e. This shows ha sca e ing a la ge
Qs inc eases ela i e o he signal a low Qas empe a u e aises, he e o e smalle leng h
scales a e mo e dominan in he a e age s uc u e o he molecules. This could be due o a
bending o e sho spa ial leng hs which is consis en wi h an inc ease in local lexibili y o
he molecules and hus wi h a dec ease o lp. The ac ha he U-Vis abso p ion seems o
be co ela ed wi h he beha io o he g adien sugges s ha his e ec is ela ed wi h he
p e-mel ing and mel ing o he molecules.
Fi s o he small angle sca e ing da a as a unc ion o he empe a u e we e a emp ed
using he comme cial so wa e package Sas iew [122]. The model used was called ” lexible
cylinde ” and i desc ibes he DNA molecule as a K a ky-Po od like chain (sec. 3.4.2) bu
he base pai s a e ep esen ed as ha d sphe es (no o e lap allowed) o adius Rins ead
o dimensionless poin s. Thus he model accoun s o sel excluded olume e ec when
conside ing he con o ma ions he molecule is allow o adop and also o he e ec o he
adius o he DNA in he sca e ing pa e n.
The de i a ion o he i ing unc ion is based on Mon e-Ca lo simula ions which used his
model. Pede sen and Schu enbe ge i ed he simula ions and used he esul s along wi h
nume ical app oxima ions o de i e a phenomenological exp ession o a sca e ing unc ion
o semi lexible chains (SWC(Q, L, lp)) which accoun ed o he excluded olume e ec [123].
I he Lo he chain is signi ican ly la ge han he Ro he ha d sphe es he sca e ing can
be exp essed as a mul iplica ion o wo e ms using he decoupling app oxima ion [124], hus
he sca e ed in ensi y om a DNA solu ion is:
IWC(Q, L, lp, R) = Ds[(SLDDNA −SLDsol)2SW C(Q, L, lp)PCS(Q, R)] + Ib(5.4)
whe e Dsis an scaling ac o p opo ional o he DNA concen a ion, SLDDNA is he
sca e ing leng h densi y o he DNA molecule , SLDsol is he sca e ing leng h densi y o
149
(a)
(b)
Figu e 5.12: a) Examples o he esul o no malizing he SANS cu es o di e en empe -
a u es o he da a a 15 ◦C along wi h he linea i s ( ed lines). b) Slope o he linea i o
he no malized da a and abso p ion o he sample as a unc ion o empe a u e
150
(a) (b)
Figu e 5.13: Examples o he i o he SANS da a a 15 ◦C and 97 ◦C. a) In ensi y s Qin
log-log scale. b) Expe imen al P( ) and P( ) o he i s, hey ha e been shi ed e ically
o he sake o cla i y.
he sol en , Ibis a cons an backg ound, SWC(Q, L, lp) is desc ibed in [123] (sec ion Me hod
3 wi h excluded olume) and SCS is he sca e ing unc ion om he c oss sec ion o a igid
od [125]:
SCS(Q, R) = [2J1(QR)
QR ]2(5.5)
whe e J1is a Bessel unc ion o he i s kind.
The ins umen al smea ing o SANS was accoun ed o by using dQ alues o each
Qwhich ep esen ed he s anda d de ia ion o Gaussian unc ions and we e calcula ed as
explained in [46]. The SLD o he sol en o neu ons (SLDsol,N ) was ixed o 5.754×10−6
˚
A−2, he alue o 2H2O[126]. Rwas ixed o 10 ˚
A and L o 485 ˚
Awhich is easonable
o DNA molecules o 145 base pai s in solu ion. Dswas i ed a oom empe a u e, he
alue ound was 58.23 ±9.26. This alue was ixed o he i a o he empe a u es. Th ee
pa ame e s we e i ed a e e y empe a u e lp,SLDDNA,X (SLD o DNA o X- ays) and
Ib.
151