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Novel features of telomere biology revealed by the absence of telomeric DNA methylation

Abstract

Cytosine methylation regulates the length and stability of telomeres, which can affect a wide variety of biological features, including cell differentiation, development, or illness. Although it is well established that subtelomeric regions are methylated, the presence of methylated cytosines at telomeres has remained controversial. Here, we have analyzed multiple bisulfite sequencing studies to address the methylation status of Arabidopsis thaliana telomeres. We found that the levels of estimated telomeric DNA methylation varied among studies. Interestingly, we estimated higher levels of telomeric DNA methylation in studies that produced C-rich telomeric strands with lower efficiency. However, these high methylation estimates arose due to experimental limitations of the bisulfite technique. We found a similar phenomenon for mitochondrial DNA: The levels of mitochondrial DNA methylation detected were higher in experiments with lower mitochondrial read production efficiencies. Based on experiments with high telomeric C-rich strand production efficiencies, we concluded that Arabidopsis telomeres are not methylated, which was confirmed by methylation-dependent restriction enzyme analyses. Thus, our studies indicate that telomeres are refractory to de novo DNA methylation by the RNA-directed DNA methylation machinery. This result, together with previously reported data, reveals that subtelomeric DNA methylation controls the homeostasis of telomere length

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Novel features of telomere biology revealed by the absence of telomeric DNA methylation

Author: Vega Vaquero, Alejandro; Bonoro, Giancarlo; Morselli, Marco; Vaquero Sedas, María Isabel; Rubbi, Liudmilla; Pellegrini, M.; Vega Palas, Miguel Ángel
Publisher: Cold Spring Harbor Laboratory Press
Year: 2016
DOI: 10.1101/gr.202465.115
Source: https://idus.us.es/bitstreams/a743c9ab-1bd6-47ae-896d-90e4b3b4393d/download
No el ea u es o elome e biology e ealed
by he absence o elome ic DNA me hyla ion
Alejand o Vega-Vaque o,
1,4
Gianca lo Bono a,
2,4
Ma co Mo selli,
2,4
Ma ía I. Vaque o-Sedas,
3
Liudmilla Rubbi,
2
Ma eo Pelleg ini,
2
and Miguel A. Vega-Palas
3
1
Technical Supe io School o In o ma ics Enginee ing, Uni e si y o Se ille, 41080 Se ille, Spain;
2
Depa men o Molecula , Cell and
De elopmen al Biology, Uni e si y o Cali o nia, Los Angeles, Cali o nia 90095, USA;
3
Ins i u e o Vege al Biochemis y and
Pho osyn hesis, CSIC-Uni e si y o Se ille, IBVF (CSIC-US), 41092 Se ille, Spain
Cy osine me hyla ion egula es he leng h and s abili y o elome es, which can a ec a wide a ie y o biological ea u es,
including cell di e en ia ion, de elopmen , o illness. Al hough i is well es ablished ha sub elome ic egions a e me hyl-
a ed, he p esence o me hyla ed cy osines a elome es has emained con o e sial. He e, we ha e analyzed mul iple bisul-
i e sequencing s udies o add ess he me hyla ion s a us o A abidopsis haliana elome es. We ound ha he le els o
es ima ed elome ic DNA me hyla ion a ied among s udies. In e es ingly, we es ima ed highe le els o elome ic DNA
me hyla ion in s udies ha p oduced C- ich elome ic s ands wi h lowe e iciency. Howe e , hese high me hyla ion es-
ima es a ose due o expe imen al limi a ions o he bisul i e echnique. We ound a simila phenomenon o mi ochond ial
DNA: The le els o mi ochond ial DNA me hyla ion de ec ed we e highe in expe imen s wi h lowe mi ochond ial ead
p oduc ion e iciencies. Based on expe imen s wi h high elome ic C- ich s and p oduc ion e iciencies, we concluded ha
A abidopsis elome es a e no me hyla ed, which was con i med by me hyla ion-dependen es ic ion enzyme analyses.
Thus, ou s udies indica e ha elome es a e e ac o y o de no o DNA me hyla ion by he RNA-di ec ed DNA me hyl-
a ion machine y. This esul , oge he wi h p e iously epo ed da a, e eals ha sub elome ic DNA me hyla ion con ols
he homeos asis o elome e leng h.
[Supplemen al ma e ial is a ailable o his a icle.]
Telome es gua an ee he comple e eplica ion o ch omosomal e -
mini, p e en genome ins abili y, and in luence ele an sys emic
p ocesses like aging, cance , o illness (Blackbu n 2010). The
leng h o elome es and he ch oma in o ganiza ion o elome ic
egions in luence elome e unc ions. Hence, he epigene ic ma ks
ha label elome ic egions, which include elome es and sub elo-
me es, play impo an oles in elome e biology (Blasco 2007;
Gala i e al. 2013; Gi aud-Panis e al. 2013).
One o he majo epigene ic signa u es ound in euka yo es is
cy osine me hyla ion. This DNA modi ica ion egula es mul iple
p ocesses in plan s and animals, including he homeos asis o elo-
me e leng h (Blasco 2007; Suzuki and Bi d 2008; Ooi e al. 2009;
Law and Jacobsen 2010; Cas el and Ma ienssen 2013; Og ocká
e al. 2014; Vaque o-Sedas and Vega-Palas 2014). Mammalian
DNA me hyla ion is p ima ily ound in he CG con ex
(Ramsahoye e al. 2000; Lis e e al. 2009). In con as , plan s
ha e signi ican le els o DNA me hyla ion in all sequence con-
ex s (CG, CHG, and CHH, whe e H can be A, C, o T) (Law and
Jacobsen 2010).
Al hough sub elome ic DNA me hyla ion has been epo ed
in animals and plan s, he p esence o DNA me hyla ion a elo-
me es emains an open ques ion in bo h kingdoms (Blasco 2007;
V bsky e al. 2010; Vaque o-Sedas e al. 2011; Og ocká e al.
2014). The me hyla ion s a us o mammalian elome es has no
been in es iga ed because, as men ioned abo e, mammals ha e
low le els o non-CG me hyla ion, which is he ype o DNA me h-
yla ion ha should be associa ed wi h elome ic sequences
(CCCTAA in mammals and CCCTAAA in plan s). In u n, al-
hough he me hyla ion le els o plan elome es ha e been s ud-
ied by di e en g oups, hey emain con o e sial (V bsky e al.
2010; Maje o á e al. 2011a,b; Vaque o-Sedas and Vega-Palas
2011a,b; Vaque o-Sedas e al. 2011, 2012; Og ocká e al. 2014).
The e o e, i is impo an o se le he me hyla ion s a us o
elome es.
The expe imen al analysis o he epigene ic ma ks ha label
elome es is complica ed by he in luence o sub elome es and/
o he In e s i ial Telome ic Sequences (ITSs), which a e usually
p esen a pe icen ome ic egions and sub elome es (Vaque o-
Sedas and Vega-Palas 2011b). On he one hand, elome es and sub-
elome es canno be di e en ia ed by mic oscopy echniques. On
he o he hand, ITSs can in e e e wi h he analyses o elome ic
ch oma in s uc u e by ch oma in immunop ecipi a ion ollowed
by hyb idiza ion wi h a elome ic p obe. Mo eo e , ITSs migh be
iden i ied as elome es in massi ely pa allel DNA sequencing s ud-
ies (Vaque o-Sedas e al. 2012; Vega-Palas and Vaque o-Sedas
2013). Hence, he analysis o he epigene ic modi ica ions p esen
a elome es should be ca e ully designed.
4
These au ho s should be conside ed equal i s au ho s.
Co esponding au ho s: [email p o ec ed], ma eop@mcdb.
ucla.edu
A icle published online be o e p in . A icle, supplemen al ma e ial, and publi-
ca ion da e a e a h p://www.genome.o g/cgi/doi/10.1101/g .202465.115.
© 2016 Vega-Vaque o e al. This a icle is dis ibu ed exclusi ely by Cold
Sp ing Ha bo Labo a o y P ess o he i s six mon hs a e he ull-issue publi-
ca ion da e (see h p://genome.cshlp.o g/si e/misc/ e ms.xh ml). A e six
mon hs, i is a ailable unde a C ea i e Commons License (A ibu ion-
NonComme cial 4.0 In e na ional), as desc ibed a h p://c ea i ecommons.
o g/licenses/by-nc/4.0/.
Resea ch
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The s udy o elome es independen ly o ITSs may be acili a -
ed by he ac ha hey usually ha e di e en sequence o ganiza-
ions. Al hough elome es a e essen ially composed o andem
a ays o pe ec elome ic epea s, ITSs usually con ain pe ec
elome ic epea s in e spe sed wi h degene a e epea s. In ac , i
is uncommon o ITSs o con ain long s e ches o pe ec andem
elome ic epea s (Lin and Yan 2008; Gámez-A jona e al. 2010).
He e, we ha e add essed he me hyla ion s a us o A abidopsis
haliana elome es by analyzing da a p oduced by genome-wide
bisul i e sequencing s udies and by pe o ming me hyla ion-
dependen es ic ion analyses. These s udies e ealed ha
A abidopsis elome es a e no me hyla ed.
Resul s
In silico analysis o elome ic DNA me hyla ion
To gain insigh in o he me hyla ion s a us o A abidopsis elo-
me es, we es ima ed hei me hyla ion le els om di e en ge-
nome-wide bisul i e sequencing s udies (Supplemen al Table S1).
These s udies had been pe o med in di e en labo a o ies and in-
ol ed he ea men o DNA wi h sodium bisul i e, he PCR am-
pli ica ion o he esul ing DNA samples, and he sequencing o
he bisul i e modi ied DNA s and. Since bisul i e deamina es
unme hyla ed cy osines gene a ing u acil, unme hyla ed cy o-
sines a e de ec ed as hymines a e PCR ampli ica ion. In con as ,
me hyla ed cy osines a e no modi ied by bisul i e and emain as
cy osines a e ampli ica ion (F omme e al. 1992; Cla k e al.
1994).
The eads ep esen ing elome es in he bisul i e sequencing
s udies should ollow a pe ec andem elome ic epea pa e n,
ep esen ed as (YYYTAAA)
n
, in which Y is C o T depending on
whe he he elome ic cy osines a e con e ed o no . We es ima -
ed ha eads con aining abou se en pe ec andem elome ic e-
pea s should essen ially ep esen elome es in he bisul i e
expe imen s (Me hods). Only 20 genomic (YYYTAAA)
7
sequences
can be ound in he A abidopsis genome, wi h one o hem being
300 bp in leng h (Fig. 1).
Since he leng h o he eads in many o he s udies selec ed
was 50 bp, we conside ed elome ic eads as hose in which he i s
50 bp ollow he (YYYTAAA)
n
pa e n, e en i hey we e longe . We
deno ed hese eads o agmen o eads as 50-bp Telome ic Reads
(50TRs).
Va iable le els o elome ic DNA me hyla ion a e es ima ed om
di e en bisul i e sequencing s udies
Be o e s udying he me hyla ion s a us o A abidopsis elome es,
we decided o e alua e he e iciency o elome ic C- ich s and
gene a ion a e bisul i e ea men . We ound ha he p oduc ion
e iciency o he C- ich s and a ied among he di e en bisul i e
expe imen s. These e iciencies we e calcula ed as he numbe o
50TRs di ided by he o al numbe o mapped eads and we e ex-
p essed as pe cen ages (Supplemen al Table S1).
We nex decided o de e mine wo pa ame e s o es ima e he
deg ee o cy osine me hyla ion a elome es: i s , he pe cen age
o uncon e ed cy osines wi hin 50TRs, and second, he pe cen -
age o 50TRs ha con ained a leas one uncon e ed cy osine.
Ou analyses e ealed ha he pe cen ages o uncon e ed cy o-
sines wi hin 50TRs de i ed om wild- ype A abidopsis plan s a -
ied depending on he s udy analyzed (Fig. 2). These pe cen ages
anged om 1.5% o 40%. In e es ingly, he compa ison o he di -
e en s udies indica ed ha he pe cen age o uncon e ed cy o-
sines a ied wi h he elome ic C- ich s and p oduc ion
e iciency. High pe cen ages o uncon e ed cy osines, om 5%
o 40%, we e de ec ed when he elome ic C- ich s and p oduc-
ion was < 8% × 10
−4
. In u n, he pe cen ages o uncon e ed cy-
osines we e be ween 1.5% and 5% when he elome ic C- ich
s and p oduc ion was > 8% × 10
−4
(Fig. 2). In ag eemen wi h
his obse a ion, we no iced ha he pe cen age o 50TRs con ain-
ing cy osines also dec eased when he p oduc ion e iciency o he
C- ich s and inc eased (Fig. 2). Hence, he le els o cy osine me h-
yla ion es ima ed a elome es dec eased wi h he p oduc ion e i-
ciency o he elome ic C- ich s and.
Expe imen al limi a ions o he bisul i e echnique lead
o o e es ima ion o elome ic DNA me hyla ion
To de e mine whe he he an i-co ela ion de ec ed be ween p o-
duc ion e iciency and cy osine uncon e sion was also obse able
a o he genomic loci, we assessed bo h a iables in mi ochond ial
Figu e 1. Majo A abidopsis ITSs con aining pe ec elome ic epea s. Genomic DNA sequences con aining (YYYTAAA)
7
s ings and se e al nucleo ides
ups eam and downs eam we e aligned using he compu e p og am, CLUSTALW. These sequences we e iden i ied using he Pa Ma ch ool and he
TAIR10 Whole Genome da abase (BAC clones) in The A abidopsis In o ma ion Resou ce (TAIR; h p://www.A abidopsis.o g). The name o he clones co -
esponding o each sequence is indica ed as well as he hi co esponding o each clone. The igh bo de o he 300-bp ITS is included in he alignmen . Red
le e s label DNA sequences ha con inuously ollow he (YYYTAAA)
n
pa e n. As e isks ma k conse ed esidues.
Vega-Vaque o e al.
1048 Genome Resea ch
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DNA. We de ec ed highe le els o uncon e ed mi ochond ial cy-
osines in expe imen s wi h lowe mi ochond ial ead p oduc ion
e iciencies (Fig. 3A). In addi ion, we also obse ed highe le els o
uncon e sion in cy osines wi h lowe ead co e age in all he ex-
pe imen s analyzed (e.g., Fig. 3B). These esul s lead us o conclude
ha he me hyla ion le els o elome es should be be e es ima ed
om he expe imen s wi h he high elome ic C- ich s and p o-
duc ion e iciencies.
Be o e u he analyzing he me hyla ion s a us o A abidopsis
elome es, we decided o in es iga e elome ic p oduc ion e icien-
cy and cy osine uncon e sion in DNA me hyla ion mu an s. We
analyzed se e al mu an s a ec ed in CG, CHG, and CHH me hyl-
a ion. These mu an s we e al e ed in DNA me hyl ans e ases o
ch oma in emodeling p o eins. Among he DNA me hyl ans e -
ase mu an s we e me 1-3, cm 2, a double me 1-3,cm 3-11 mu an ,
and a iple d m1-2, d m2-2, cm 3-11 mu an . Among he ch oma-
in emodeling mu an s we e ddm1-2, d d1-7, and a double ddm1-
2,d d1-7 mu an . P e ious esul s ha e shown ha DNA me hyla-
ion is a ec ed a a genome-wide le el in all hese mu an s.
Whe eas CG me hyla ion is ca alyzed by MET1, non-CG me hyla-
ion is ca alyzed by CMT3 (CHG) and DRM1, DRM2 o CMT2
(CHH and also CHG). These DNA me hyl ans e ases access DNA
wi h he help o ch oma in emodeling p o eins like DDM1 and
DRD1 (Vongs e al. 1993; Finnegan e al. 1996; Ronemus e al.
1996; Jeddeloh e al. 1999; Ba ee e al. 2001; Lind o h e al.
2001; Cao and Jacobsen 2002a,b; Law and Jacobsen 2010; S oud
e al. 2013; Zemach e al. 2013).
No su p isingly, we ound ha he pe cen age o uncon e -
ed cy osines in 50TRs and he pe cen age o 50TRs con aining cy-
osines de ec ed in all he me hyla ion mu an s a ied wi h he
elome ic C- ich s and p oduc ion e iciency (Fig. 2). Hence, hese
esul s con i med ha he me hyla ion s a us o elome es is con-
ounded by expe imen al limi a ions o he bisul i e echnique.
The double me 1-3,cm 3-11, and d m1-2,d d1-7 mu an s
ha e been shown o lack signi ican le els o CHH me hyla ion.
Howe e , we de ec ed elome ic DNA me hyla ion in hese mu-
an s, which e ealed ha hei elome ic DNA was no ully con-
e ed by bisul i e. To u he explo e con e sion e iciencies, we
pe o med bisul i e sequencing expe imen s using a syn he ic
nonme hyla ed elome ic DNA empla e. We used wo di e en
empe a u es (54°C and 40°C) du ing he bisul i e ea men
s ep. The pe cen age o uncon e ed cy osines de ec ed in hese
expe imen s was ∼1% a 54°C and 2.3% a 40°C, e ealing ha
bisul i e con e sion was mo e e ec i e a highe empe a u e
(Fig. 4A). These da a demons a e ha he expe imen al condi-
ions in luence he deg ee o elome ic cy osine con e sion.
We nex wan ed o add ess why high le els o cy osine me h-
yla ion we e es ima ed om some o he A abidopsis bisul i e se-
quencing s udies. Two di e en kinds o 50TRs could be de ec ed
in all he A abidopsis s udies acco ding o hei cy osine con en :
hose wi h a low con en o cy osines, and hose wi h a high
A
B
Figu e 3. Mi ochond ial DNA me hyla ion es ima es a y wi h he mi o-
chond ial eads’p oduc ion e iciency. Da a om di e en genome-wide
bisul i e sequencing expe imen s we e analyzed. (A) Sca e plo ep esen-
a ion o he pe cen age o uncon e ed cy osines (Cs) wi hin mi ochon-
d ial eads e sus he mi ochond ial ead p oduc ion e iciency in wild-
ype plan s. The p oduc ion e iciencies we e calcula ed as he numbe
o mi ochond ial eads di ided by he o al numbe o mapped eads.
They a e exp essed as pe cen ages. (B) Densi y plo ep esen a ion o
uncon e sion e sus co e age o all he mi ochond ial cy osines analyzed
in expe imen SRR578938 (Zemach e al. 2013). The dis ibu ion o
uncon e sion and co e age is ep esen ed in bo h axes.
Figu e 2. Telome ic DNA me hyla ion es ima es a y wi h he elome ic
eads’p oduc ion e iciency. Da a om di e en genome-wide bisul i e se-
quencing expe imen s we e analyzed. The uppe panel shows he sca e
plo ep esen a ion o he pe cen age o uncon e ed cy osines (Cs) de-
ec ed wi hin 50TRs (es ima ed me hyla ion le els) e sus he elome ic
C- ich s and p oduc ion e iciency. P oduc ion e iciencies we e calcula ed
as he numbe o 50TRs di ided by he o al numbe o mapped eads and
exp essed as pe cen ages. The lowe panel shows he sca e plo ep esen-
a ion o he pe cen age o 50TRs con aining cy osines e sus he elo-
me ic C- ich s and p oduc ion e iciency. Da a ob ained om wild- ype
expe imen s a e ep esen ed as ed ci cles and da a ob ained om DNA
me hyla ion mu an s a e ep esen ed as blue ci cles. These mu an s in-
clude single (me 1-3, cm 2, ddm1-2, d d1-7), double (me 1-3 and cm 3-
11, ddm1-2 and d d1-7), and iple (d m1-2, d m2-2 and cm 3-11)
mu an s.
A abidopsis elome es a e unme hyla ed
Genome Resea ch 1049
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con en (Fig. 5A). This kind o dis ibu ion has been p e iously ob-
se ed a e bisul i e ea men o nonme hyla ed phage DNA
(Guo e al. 2013). Al hough phage eads wi h ew cy osines we e
p oposed o o igina e om andom bisul i e con e sion ailu e
o sequencing e o s, phage eads wi h high con en o cy osines
we e hough o a ise om seconda y s uc u e o ma ion and
o e all ailu e o bisul i e con e sion (Guo e al. 2013).
We obse ed ha he low elome ic C- ich s and p oduc ion
expe imen s gene a ed highe pe cen ages o 50TRs wi h a high
con en o cy osines han he high p oduc ion expe imen s (Fig.
5A). These esul s suppo he hypo hesis ha he low p oduc ion
e iciency expe imen s migh be ela ed, a leas in pa , o second-
a y s uc u e o ma ion and o e all ailu e o bisul i e con e sion
o he A abidopsis elome ic DNA. Indeed, we ound a s ong posi-
i e co ela ion be ween he pe cen age o uncon e ed cy osines
de ec ed wi hin 50TRs o mi ochond ial eads and he pe cen age
o uncon e ed eads using BS-Seeke 2 (Fig. 5B; Guo e al. 2013).
We nex decided o analyze he p oduc ion e iciency o he
elome ic empla e DNA s ands. We ound ha he elome ic C-
ich s and was p oduced wi h lowe e iciency han he G- ich
s and (Fig. 4A). In addi ion, we also ound his elome ic s and
imbalance in he expe imen s pe o med wi h A abidopsis geno-
mic DNA, al hough i was mo e p onounced in his la e case.
Al hough he le els o uncon e ed cy osines a A abidopsis elo-
me es we e lowe in expe imen s wi h lowe s and imbalance,
he le els o uncon e ed cy osines de ec ed o he syn he ic em-
pla e did no dec ease wi h he a io o he elome ic s ands (Fig.
4A). These esul s could be explained i we assume ha he elo-
me ic empla e had a lowe endency o emain double s anded
o o o m seconda y s uc u e han he A abidopsis elome ic ag-
men s du ing bisul i e expe imen s. This assump ion is suppo ed
by he ac ha uncon e ed cy osines do no end o accumula e
wi hin he same elome ic empla e eads and by he i ual ab-
sence o elome ic empla e eads wi h a high densi y o cy osines
(Fig. 4A,B). The na u e o he syn he ic elome ic empla e could
ha e in luenced i s capabili y o emain double s anded o o
o m seconda y s uc u es as i was syn he ized by annealing wo
elome ic oligos and, mos impo an ly, was sho e (105 bp)
han he A abidopsis DNA agmen s analyzed in he whole-ge-
nome bisul i e sequencing s udies ( ypically se e al hund ed bp).
We ound ha cy osines wi hin mi ochond ial DNA egions
wi h high CG densi y had a highe endency o be uncon e ed
and, o a lesse ex en , unco e ed han cy osines wi hin low CG
densi y egions (e.g., Fig. 6A). This endency was pa icula ly
A
B
Figu e 4. A syn he ic nonme hyla ed elome ic DNA empla e is no ul-
ly con e ed du ing bisul i e ea men . (A) Sca e plo ep esen a ions o
he pe cen ages o uncon e ed cy osines (Cs) wi hin 50TRs and o 50TRs
con aining cy osines e sus he elome ic s ands a io. Ra io alues we e
calcula ed as he numbe o 50TRs di ided by he numbe o eads ha ol-
low he TTTAGGG pa e n along he i s 50 bp. They we e exp essed as
pe cen ages. Whole-genome bisul i e sequencing s udies pe o med
wi h he A abidopsis wild- ype s ain ( ed do s) and wi h DNA me hyla ion
mu an s (blue do s) we e analyzed. Simila ly, bisul i e sequencing expe i-
men s pe o med wi h a 105-bp-long elome ic syn he ic agmen a
54°C (ligh g een do s) o a 40°C (da k g een do s) we e also analyzed.
Da a co esponding o he me 1-3, cm 3-11 and ddm1-2, d d1-7 double
mu an s a e indica ed. (B) Ba plo ep esen a ion showing he dis ibu ion
o cy osines wi hin 50TRs de i ed om he syn he ic elome ic agmen
ea ed wi h bisul i e a 54°C (ligh g een ba s) o a 40°C (da k g een
ba s). The pe cen ages o 50TRs con aining di e en numbe s o cy osines
a e ep esen ed. A e age alues co esponding o ou independen expe -
imen s a e shown o each empe a u e.
A
B
Figu e 5. Low le els o con e ed eads unde lie he o e es ima ion o
cy osine me hyla ion. (A) Ba plo ep esen a ion showing he dis ibu ion
o cy osines wi hin 50TRs. The pe cen ages o wild- ype 50TRs con aining
di e en numbe s o cy osines a e ep esen ed. Low ( < 8% × 10
−4
) and
high ( > 8% × 10
−4
) elome ic C- ich s and p oduc ion e iciency expe i-
men s we e g ouped and hei a e age pe cen ages we e independen ly
ep esen ed. (B) Sca e plo ep esen a ion o he pe cen age o uncon-
e ed cy osines de ec ed wi hin 50TRs o mi ochond ial eads e sus
he pe cen age o mapped eads lagged as po en ially uncon e ed.
Po en ial uncon e ed eads we e lagged by BS-Seeke 2 as ollows:
#(mCH si es) > 5 and [#(mCH si es)/#(all CH si es)] > 0.5. P- alues o
50TRs and mi ochond ial eads a e 0.0008 and 0.0241, espec i ely.
Vega-Vaque o e al.
1050 Genome Resea ch
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e iden in expe imen s wi h high le els o o al mi ochond ial un-
con e ed cy osines (Fig. 6B). I will be in e es ing o asce ain
whe he high CG densi y egions ha e a high p opensi y o emain
as double-s anded DNA o o o m noncanonical seconda y s uc-
u es du ing bisul i e expe imen s.
High-con idence da a e eal he absence o DNA me hyla ion
in A abidopsis elome es
As men ioned abo e, he expe imen s wi h high elome ic C- ich
s and p oduc ion e iciencies should be e ep esen he me hyl-
a ion s a us o A abidopsis elome es. Indeed, hese expe imen s e-
ealed ha A abidopsis elome es a e no me hyla ed o unde go
e y low le els o DNA me hyla ion (Fig. 2). We ocused on he
only high C- ich s and p oduc ion e iciency s udy analyzed
he e ha gene a ed eads longe han 50 bp (Supplemen al Table
S1). The Sequence Read A chi e accession numbe o his expe i-
men is SRR578938 (Zemach e al. 2013). The pe cen ages o un-
con e ed cy osines wi hin 50TRs and o 50TRs con aining
cy osines de ec ed in SRR578938 we e 1.5% and 10%, espec i ely
(Fig. 2). Hence, he le els o elome ic cy osine me hyla ion es i-
ma ed om SRR578938 a e wi hin he echnical backg ound le els
achie ed o he whole genome in bisul i e expe imen s (Lis e
e al. 2008).
Since he eads om SRR578938 we e 100 bp in size, we decid-
ed o use he comple e sequence o all he 50TRs om his expe -
imen o map hei genomic o igin. We ound ha all he 50TRs
mapped o elome es, o ITSs, o o he le elome e-sub elome e
junc ion o Ch omosome I (Fig. 7; Supplemen al Fig. S1). Mos
o he elome ic eads de ec ed lacked
cy osines along hei en i e leng h (Fig.
7; Supplemen al Fig. S1). In con as ,
he eads co esponding o ITSs o o
he elome e-sub elome e junc ion o
Ch omosome I exhibi ed high le els o
cy osines, which is in ag eemen wi h
he high le els o DNA me hyla ion p e-
iously epo ed o hese loci (Fig. 7;
Cokus e al. 2008; V bsky e al. 2010;
Vaque o-Sedas e al. 2011, 2012;
Og ocká e al. 2014). Thus, he analysis
o he comple e 100-bp eads om
SRR578938 con i ms he i ual absence
o DNA me hyla ion in A abidopsis
elome es.
Res ic ion enzyme sensi i i y analyses
con i m he absence o DNA
me hyla ion in A abidopsis elome es
To e i y ou in silico analyses, we decid-
ed o s udy DNA me hyla ion a
A abidopsis elome es using an al e na-
i e echnique. We pe o med Sou he n
blo hyb idiza ion expe imen s using
h ee es ic ion enzymes wi h di e en
DNA me hyla ion dependence/sensi i -
i y. One o he enzymes (HpaII) ecogniz-
es and cu s he sequence CCGG only
when bo h cy osines a e unme hyla ed.
The o he wo enzymes (Mc BC and
FspEI) ecognize me hyla ed cy osines
and cu he su ounding nucleo ides. Mc BC ecognizes he se-
quence R
m
C(
N40-3000
)R
m
C and should a ge he i s cy osine o
he elome ic epea uni (CCCTAAA) i i we e me hyla ed.
FspEI ecognizes he sequence C
m
C and should a ge he second
and hi d cy osines o he elome ic epea uni i hey we e me h-
yla ed (Fig. 8A).
We diges ed equal amoun s o A abidopsis genomic DNA wi h
he es ic ion enzyme T u9I o wi h T u9I plus one o he enzymes
men ioned abo e. We hen an he esul ing DNA samples on an
aga ose gel and hyb idized hem wi h a elome ic p obe o wi h
a cen ome ic p obe. T u9I ecognizes and cu s he sequence
TTAA, which localizes in sub elome ic egions a ∼200 bp om
he pe ec elome ic epea s, on a e age. The e o e, his enzyme
cu s he A abidopsis genome equen ly, bu lea es elome es es-
sen ially uncu . We obse ed a 2- o 5-kbp uzzy elome ic band a -
e diges ing A abidopsis genomic DNA wi h T u9I, as p e iously
epo ed (Richa ds and Ausubel 1988; Fi zge ald e al. 1999;
Vaque o-Sedas e al. 2011). This elome ic band emained una -
ec ed a e diges ion wi h HpaII, FspEI, o Mc BC (Fig. 8B,C). In
con as , h ee cen ome ic DNA bands gene a ed a e T u9I
diges ion we e eadily diges ed wi h FspEI and Mc BC, as would
be expec ed due o he high le els o DNA me hyla ion p e iously
obse ed o he cen ome ic epea s. As expec ed, hese bands e-
mained una ec ed in he p esence o HpaII (Vongs e al. 1993;
Lind o h e al. 2001). Al hough hese esul s canno comple ely
ule ou he exis ence o a e y mino po ion o me hyla ed elo-
me es, we should conside ha a single cu wi hin a elome ic ag-
men should sho en his agmen . In addi ion, he e y low
p opo ion o 50TRs con aining one o wo uncon e ed cy osines
A
B
Figu e 6. High CG densi y challenges cy osine con e sion and co e age o mi ochond ial DNA. Da a
om di e en genome-wide bisul i e sequencing expe imen s we e analyzed. (A) Densi y plo ep esen-
a ions o cy osine uncon e sion o co e age e sus he pe cen age o CG esidues wi hin 100-bp iles
(CG densi y). All he mi ochond ial cy osines om expe imen SRR492932 (Dowen e al. 2012) we e
g ouped in 100-bp iles and analyzed. The dis ibu ions o uncon e sion, co e age, and CG densi ies
a e ep esen ed in bo h axes. Pea son co ela ion coe icien s (R) a e also indica ed. (B) Sca e plo ep-
esen a ions o Pea son co ela ion coe icien s be ween cy osine uncon e sion o co e age and CG den-
si y pe 100-bp iles (PCC alues) e sus he mean mi ochond ial me hyla ion es ima ed in e e y
expe imen (pe cen age o uncon e ed Cs). P- alues o cy osine uncon e sion and co e age a e
0.0064 and 0.0802, espec i ely.
A abidopsis elome es a e unme hyla ed
Genome Resea ch 1051
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ha we ha e obse ed in he wild- ype high p oduc ion e iciency
expe imen s should be be e explained by expe imen al limi a-
ions o he bisul i e echnique, as should be he 50TRs con aining
uncon e ed cy osines obse ed in he expe imen s pe o med
wi h he DNA me hyla ion mu an s lacking CHH me hyla ion.
Thus, aken oge he ou esul s suppo ha DNA me hyla ion
is essen ially absen om A abidopsis elome es.
Discussion
Limi a ions o he bisul i e sequencing echnique
Al hough bisul i e sequencing is p obably one o he mos accu a e
echniques o analyze cy osine me hyla ion, some p oblems can
a ise du ing he bisul i e ea men . We belie e ha hese p ob-
lems may explain he e y high le els o cy osine de ec ion ha
we ound a A abidopsis elome es in expe imen s wi h low elo-
me ic C- ich s and p oduc ion e iciencies. I some unme hyla ed
cy osines do no eac wi h bisul i e, hey will be de ec ed as me h-
yla ed cy osines leading o o e es ima ion o he me hyla ion
e en s. Thus, o e es ima ion o elome ic me hyla ion should be
in luenced by he deg ee o elome ic DNA dena u a ion o he o -
ma ion o elome ic C- ich s and seconda y s uc u es like he i-
mo i (Le oy e al. 1994; Fe nández e al. 2011; Guo e al. 2013).
In addi ion, since bisul i e ea men modi ies DNA and e en de-
g ades i (F omme e al. 1992; G unau e al. 2001), some un-
me hyla ed cy osines migh pa ially o imp ope ly eac wi h
bisul i e eagen s leading o he gene a ion o abe an cy osines.
Figu e 7. A high-con idence expe imen e eals he absence o elome ic DNA me hyla ion. The comple e 100-bp sequences o all he 50TRs om
SRR578938 (Zemach e al. 2013) con aining one o mo e cy osines a e displayed, oge he wi h he comple e sequences o some o he 50TRs lacking
cy osines. The numbe o cy osines wi hin 50TRs and he genomic o igin es ima ed o all he eads a e indica ed in blue. Among he 222 50TRs iden i ied
in SRR578938, 199 did no con ain cy osines (see Supplemen al Fig. S1), 19 con ained one o wo cy osines, and ou con ained i e cy osines o mo e. The
pa s o he eads ha ollow a con inuous pe ec elome ic (YYYTAAA)
n
pa e n a e shown in black wi h he excep ion o cy osines ha a e labeled ed. The
emaining bases a e shown in g een and ha e been used o mapping pu poses. All he eads could be mapped o he TAIR10 da abase excep one, which
mapped o he le elome e-sub elome e junc ion o Ch omosome I (Kuo e al. 2006). No e ha all he 50TRs lacking cy osines (Supplemen al Fig. S1) and
hose con aining one o wo cy osines ollow a quasi-pe ec elome ic (YYYTAAA)
n
pa e n along hei en i e 100-bp leng h. Mos o hese eads (218 o
222) should o igina e om elome es. The 50TR con aining 19 cy osines also ollows he pe ec elome ic pa e n along i s en i e 100-bp leng h and
should be elome ic and o igina e om expe imen al limi a ions o he bisul i e echnique o o igina e om he 300-bp ITS. The 50TRs ha con ain
mo e han i e cy osines o igina e om ITSs o om he le elome e–sub elome e junc ion o Ch omosome I (IL). Since he equency o hese 50TRs
(3 o 222; 1.4%) is expec ed acco ding o he dis ibu ion o ITSs and elome e–sub elome e junc ions in he A abidopsis genome, hei cy osines migh
e lec eal me hyla ion e en s.
Vega-Vaque o e al.
1052 Genome Resea ch
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These abe an cy osines migh s ill be ecognized as cy osines bu
unde go ampli ica ion wi h less e iciency han u acil du ing he
i s cycle o PCR. Al e na i ely, hese abe an cy osines migh
be ampli ied e icien ly du ing he i s cycle o PCR bu inco ec ly
copied. Such phenomena migh explain he an i-co ela ion ob-
se ed o he elome ic C- ich s and p oduc ion e iciency and
he uncon e sion o cy osines a A abidopsis elome es.
The hi d cy osine o he A abidopsis elome ic epea uni has
been ound o be uncon e ed mo e equen ly han he i s and
second cy osines a e bisul i e ea men (Cokus e al. 2008). This
cy osine is uncon e ed mo e equen ly han he i s and he sec-
ond in he 50TRs o igina ing om he double me 1-3,cm 3-11 and
ddm1-2, d d1-7 mu an s, which lack signi ican le els o asymme -
ic DNA me hyla ion (Supplemen al Fig. S2; S oud e al. 2013;
Zemach e al. 2013). Hence, he lowe con e sion a e o his cy o-
sine should esul om expe imen al limi a ions like hose men-
ioned abo e. The hi d cy osine o he A abidopsis elome ic
epea uni is also uncon e ed mo e equen ly han he i s
and second cy osines in sub elome ic egions and ITSs o wild-
ype plan s (Fig. 7; Cokus e al. 2008; V bsky e al. 2010; Og ocká
e al. 2014). Howe e , hese cy osines e lec eal me hyla ion
e en s. Thus, aken oge he , ou esul s sugges a special DNA con-
o ma ion o he elome ic epea a ays.
We hypo hesize ha incomple e elome e dena u a ion and/
o elome ic seconda y s uc u e could p e en bisul i e con e -
sion, enhance bisul i e d i en DNA b eakage, and/o al e he e i-
ciency/accu acy o he i s cycle o PCR ampli ica ion a e
bisul i e ea men . On he o he hand, he e icien dena u a ion
o elome es and he absence o elome ic seconda y s uc u es
could a o cy osine con e sion, al hough he con e sion e icien-
cies achie ed depend on di e en expe imen al pa ame e s, such
as he empe a u e o incuba ion wi h bisul i e.
Telome es a e e ac o y o de no o DNA me hyla ion
Ou esul s indica e ha DNA me hyla ion is absen om
A abidopsis elome es. Howe e , sub elome ic egions display a
high le el o cy osine me hyla ion, which is in ag eemen
wi h p e iously published esul s (Fig. 9A; V bsky e al. 2010;
Vaque o-Sedas e al. 2011; Og ocká e al. 2014).
Small in e e ing RNAs (siRNAs) can a ge DNA me hyla ion
in all sequence con ex s h ough he RNA-di ec ed DNA
Me hyla ion pa hway (RdDM). This pa hway in ol es mul iple
p o eins including DNA and his one me hyl ans e ases, ch oma-
in emodeling p o eins, RNases, and DNA o RNA polyme ases
(Law and Jacobsen 2010). Plan s ha e wo speci ic DNA poly-
me ases in ol ed in RdDM: pol IV and pol V. Pol IV oge he
wi h he RNA dependen RNA polyme ase 2 (RDR2) and he
Dice -like RNase 3 (DCL3) pa icipa es in he gene a ion o 24-bp
siRNAs. In u n, pol V, he siRNA single s and binding p o ein
A gonau e 4 (AGO4) and he non-CG Domains Rea anged DNA
me hyl ans e ase 2 (DRM2) a e equi ed o siRNA-dependen
DNA me hyla ion. The RdDM pa hway is in ol ed in de no o
DNA me hyla ion. Th ough his p ocess, siRNAs con aining a spe-
ci ic nucleo ide sequence a e belie ed o d i e DRM2-dependen
DNA me hyla ion o he same DNA sequence a di e en genomic
loci. Fo example, 24-bp siRNAs con aining pe ec elome ic
Figu e 8. Me hyla ion-dependen es ic ion enzyme analyses con i m
heabsenceo elome icDNAme hyla ion.(A)Ca oon ep esen ing hese-
quence speci ici y o he es ic ion enzymes used o diges A abidopsis ge-
nomic DNA. (B) Sou he n blo hyb idiza ions o A abidopsis genomic DNA
diges ed wi h he es ic ion enzymes indica ed in A. The uppe panel shows
equal amoun s o undiges ed (Con ol) o diges ed (HpaII, FspEI, o Mc BC)
DNA samples hyb idized wi h a elome ic p obe. The ou DNA samples
we e alsodiges ed wi h T u9I p io o hyb idiza ion. The middlepanel shows
he hyb idiza ion o he same samples wi h a 180-bp cen ome ic epea
p obe. The e hidium b omide s aining o he samples is shown in he lowe
panel. The con ol DNA sample was un in he same gel as he es o he
samples, so ha hei co esponding hyb idiza ion signals we e p ocessed
equally. (C) Ba plo ep esen a ion o he elome ic and cen ome ic bo -
om band hyb idiza ion signals exp essed as pe cen ages o he con ol.
C, H, F, and M ep esen Con ol, HpaII, FspEI, and Mc BC, espec i ely.
Figu e 9. Model ep esen ing he in luence o DNA me hyla ion on he
homeos asis o elome e leng h. (A) The DNA me hyla ion machine y o
wild- ype plan s can a ge sub elome ic egions (g ay ba ) and elo-
me e-sub elome junc ions (da k g ay ba ) bu no elome es (black ba ).
In his scena io, sub elome ic DNA me hyla ion con ibu es o posi i ely
egula e elome e leng h. (B) The homeos asis o elome e leng h is los
when sub elome ic DNA me hyla ion canno be achie ed due o he im-
pai men o he DNA me hyla ion machine y.
A abidopsis elome es a e unme hyla ed
Genome Resea ch 1053
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epea s ha e been desc ibed in A abidopsis (Gus a son e al. 2005;
V bsky e al. 2010). These siRNAs d i e RDR2, DCL3, AGO4, and
DRM2-dependen DNA me hyla ion o elome ic epea s a ITSs
and sub elome es (Cokus e al. 2008; V bsky e al. 2010; S oud
e al. 2013). Howe e , we ha e shown he e ha he RdDM pa h-
way canno a ge DNA me hyla ion a elome es, which p obably
e lec s hei special a chi ec u e (Fig. 9A).
Sub elome ic DNA me hyla ion con ols elome e
leng h homeos asis
We ha e p e iously epo ed ha A abidopsis elome es ha e lowe
le els o DNA me hyla ion han ITSs o sub elome es (Vaque o-
Sedas e al. 2011). He e, we ha e desc ibed ha DNA me hyla ion
is indeed absen om A abidopsis elome es. No ably, A abidopsis
mu an s a ec ing CG and non-CG DNA me hyla ion ha e sho e
elome es han wild- ype plan s (Og ocká e al. 2014; Vaque o-
Sedas and Vega-Palas 2014). The e o e, DNA me hyla ion mus
be in ol ed in he con ol o elome e leng h homeos asis in
A abidopsis. Since he exp ession o p o eins ha egula e elome e
leng h ha e no been ound o be al e ed in he a o emen ioned
mu an s (Zhang e al. 2006; Hudson e al. 2011), we conclude
ha sub elome ic DNA me hyla ion posi i ely con ols he ho-
meos asis o elome e leng h in A abidopsis (Fig. 9). In con as ,
DNA me hyla ion con ols elome e leng h nega i ely in mam-
mals (Gonzalo e al. 2006). Thus, long elome es a e obse ed in
mammalian DNA me hyla ion mu an s. Howe e , hese elome es
migh a ise a e elome ic sho ening, as p e iously epo ed
o he Saccha omyces ce e isiae es 1 (e e sho e elome es 1)
su i o s (Lundblad and Blackbu n 1993). In addi ion, i is un-
known whe he he con ol o elome e leng h exe ed by DNA
me hyla ion in mammals occu s a elome es o sub elome es
(Blasco 2007).
Cy osine me hyla ion has been ela ed o a wide a ie y o bi-
ological ea u es om he main enance o genome s abili y o cell
di e en ia ion, de elopmen , o illness. Many o hese ea u es a e
also a ec ed by elome e leng h (Osbo ne and Boub iak 2002; Ooi
e al. 2009; Law and Jacobsen 2010; Guy e al. 2011; Bodelon e al.
2014; Hea d and Ma ienssen 2014; Plasschae and Ba olomei
2014). Hence, i will be in e es ing o asce ain he ele ance o
sub elome ic DNA me hyla ion in all hese p ocesses in mammals
and plan s.
Me hods
In silico analysis o elome ic DNA me hyla ion
Da a om di e en genome-wide bisul i e sequencing s udies we e
analyzed (Schmi z e al. 2011; Ausin e al. 2012; Dowen e al. 2012;
Moissia d e al. 2012; S oud e al. 2012, 2013, 2014; Zhong e al.
2012; G eenbe g e al. 2013; Law e al. 2013; Zemach e al.
2013). Since he o iginal Wa son and C ick s ands, bu no hei
e e se complemen s, we e sequenced in hese s udies, only he
elome ic C- ich s and was moni o ed o es ima e me hyla ion
le els. The e o e, he elome ic G- ich s and did no in luence
he me hyla ion analyses. The Gene Exp ession Omnibus and
he Sequence Read A chi e accession numbe s o he s udies a e in-
dica ed in Supplemen al Table S1, oge he wi h he codes o he
speci ic uns analyzed.
Conside ing ha he leng h o he eads in many o he s ud-
ies selec ed was 50 bp, we decided o s a by s udying only he i s
50 bp o he eads in all he expe imen s e en i hey we e longe .
In p inciple, we conside ed elome ic eads as hose ha ollowed
he (YYYTAAA)
n
pa e n, whe e Y is C o T, along he 50 bp. These
sequences could s a a any nucleo ide (C, T, o A) and co e-
sponded o abou se en me hyla ed/unme hyla ed andem elo-
me ic epea s. We deno ed hese eads/ agmen o eads as 50-
bp Telome ic Reads (50TRs).
To e i y ha he 50TRs we e gene a ed essen ially om elo-
me es, we de e mined he numbe o (YYYTAAA)
7
nono e lapping
sequences in he A abidopsis haliana Col-0 genome, including ITSs
and elome es. Fi s , we de e mined he numbe o hese sequenc-
es a ITSs. We used he Pa Ma ch ool in The A abidopsis
In o ma ion Resou ce (TAIR; h p://www.A abidopsis.o g) and
sea ched o he sequence (YYYTAAA)
7
in he TAIR10 Whole-
Genome (BAC clones) da abase, which con ained 135,670,227
by es. This sea ch was pe o med using he de aul op ions ha in-
cluded sea ching in bo h s ands wi h no misma ches allowed. The
sea ch esul ed in 41 hi s, om which only 31 we e no epea ed
in di e en BAC clones. Six o he unique hi s co esponded o se-
quences ha we e o ganized in andem a he pe icen ome ic e-
gion o Ch omosome III gene a ing a 300-bp ITS composed o
pe ec andem elome ic epea s. In addi ion, six o he hi s
we e elome ic ( i e om pA T51 and one om TEL3N). An align-
men o he emaining 19 and he igh bo de o he 300-bp ITS is
shown in Figu e 1. This alignmen e eals ha none o he 19
(YYYTAAA)
7
a o emen ioned sequences a e included in a DNA
s ing con aining mo e han 11 epea s.
Once we de e mined he numbe o ITSs con aining he
(YYYTAAA)
7
sequence, we es ima ed he numbe o imes ha
his sequence is ound a elome es. We es ima ed ha elome es
con ained abou 765 nono e lapping (YYYTAAA)
7
sequences
(3750 bp o a e age elome e leng h di ided by 7 bp o he elo-
me ic epea uni and mul iplied by 10 elome es). The e o e,
only ∼3% o he (YYYTAAA)
7
sequences a e p esen a ITSs (25 di-
ided by 765 and mul iplied by 100). Howe e , he pe cen age o
50TRs co esponding o ITSs in he bisul i e s udies should be low-
e han 3% as he size o he DNA inse s used o cons uc he DNA
lib a ies a e ypically 150–300 bp in size. Simila ly, a low pe cen -
age o he 50TRs should co espond o he elome e–sub elome e
junc ions, which usually con ain pe ec elome ic epea s in e -
spe sed wi h degene a e epea s. In summa y, i he bisul i e expe -
imen s wo k p ope ly, we expec ha a leas 97% o he 50TRs
co espond o elome es.
To pe o m he analyses o cy osine me hyla ion a elome es
we used an in-house compu e p og am ha allowed he iden i i-
ca ion o 50TRs, he de e mina ion o he numbe o uncon e ed
cy osines wi hin 50TRs, and he numbe o eads ha ollowed he
(TTTAGGG)
n
pa e n along he i s 50 bp (Supplemen al Table S1,
Supplemen al Telome ic analyses sou ce code).
In silico analysis o mi ochond ial DNA me hyla ion
Reads o he a o emen ioned A abidopsis da a se s we e download-
ed om he GEO eposi o y and we e mapped o he en i e TAIR10
e e ence genome wi hou allowing misma ches using BS-Seeke
2.0.32 (Guo e al. 2013), which calls Bow ie 0.12.9 (Langmead
e al. 2009) in u n. Reads we e no il e ed o poo con e sion p i-
o o base calling. Coun s o C and T base calls pe mi ochond ial
cy osine o bo h s ands we e ex ac ed om he esul ing CG
map iles. Subsequen s a is ical analysis and plo s we e gene a ed
using a cus om R en i onmen (R Co e Team 2008).
Telome ic empla e syn hesis, bisul i e ea men , lib a y
p epa a ion, and nex gene a ion sequencing
Equal amoun s o oligos con aining he sequences (TTTAGGG)
15
and (CCCTAAA)
15
we e mixed, hea ed o 10 min o 98°C and
Vega-Vaque o e al.
1054 Genome Resea ch
www.genome.o g
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allowed o cool down o 15 min a oom empe a u e. Then, he
annealed DNA agmen s we e gel pu i ied and hei quali y as-
sessed using he D1000 assay on he TapeS a ion 2200 (Agilen
Technologies). End epai , A- ailing, and adap e liga ion was pe -
o med on he annealed oligos acco ding o he Illumina T uSeq
Nano ki p o ocol (ca alog #15041759, Illumina). Adap e -liga ed
oligos we e dena u ed in he p esence o bisul i e (Zymo
Ligh ning MagP ep, ca alog #D5046, Zymo Resea ch) o 8 min
a 98°C, and wo empe a u es we e used o he con e sion
s ep: 54°C (manu ac u e ’s sugges ed empe a u e) and 40°C.
Desul ona ion was pe o med acco ding o he manu ac u e ’s in-
s uc ions. Con e ed DNA was ampli ied using MyTaq Mix
(Bioline, Taun on) and Illumina T uSeq PCR P ime Cock ail ac-
co ding o he ollowing p o ocol: ini ial dena u a ion o 30 sec
a 98°C; 12 cycles o 15 sec a 98°C, o 30 sec a 60°C, o 30 sec
a 72°C; inal ex ension o 5 min a 72°C. AMPu e XP beads
we e used o clean up he inal PCR eac ions be o e sequencing.
Lib a ies we e sequenced wi h an Illumina HiSeq 2500 sys em us-
ing 100-bp single-end eads.
Me hyla ion-dependen es ic ion enzyme analyses o elome ic
DNA me hyla ion
Equal amoun s o genomic DNA (500 ng) we e undiges ed o di-
ges ed wi h he es ic ion enzymes HpaII, FspEI, o Mc BC ollow-
ing he supplie ’s ins uc ions (New England Biolabs). The
esul ing DNA samples we e pu i ied, u he diges ed wi h
T u9I, esol ed on an aga ose gel, ans e ed o a Hybond-N
+
memb ane, and hyb idized wi h a elome ic p obe, as p e iously
desc ibed (Gámez-A jona e al. 2010). Then, he same memb ane
was s ipped and hyb idized again wi h a 180-bp cen ome ic e-
pea p obe. The 180-bp cen ome ic empla e was syn he ized as
p e iously epo ed (Nagaki e al. 2003).
Da a access
Illumina bisul i e sequencing da a om his s udy ha e been sub-
mi ed o he NCBI Gene Exp ession Omnibus (GEO; h p://www.
ncbi.nlm.nih.go /geo/) unde accession numbe GSE83510.
Acknowledgmen s
We hank Suhua Feng o c i ical eading o he manusc ip and
NCBI and TAIR o sha ing hei esou ces.
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A abidopsis elome es a e unme hyla ed
Genome Resea ch 1055
www.genome.o g
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