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The NtcA-dependent P1 promoter is utilized for glnA expression in N2-fixing heterocysts of Anabaena sp. strain PCC 7120

Abstract

Expression of the glnA gene encoding glutamine synthetase, a key enzyme in nitrogen metabolism, is subject to a variety of regulatory mechanisms in different organisms. In the filamentous, N2-fixing cyanobacteritim Anabaena sp. strain PCC 7120, glnA is expressed from multiple promoters that generate several transcripts whose abundance is influenced by NtcA, the transcription factor exerting global nitrogen control in cyanobacteria. Whereas RNAI originates from a canonical NtcA-dependent promoter (P 1) and RNAII originates from a σ70-type promoter (P2), RNAIV is influenced by NtcA but the corresponding promoter (P3) does not have the structure of NtcA-activated promoters. Using RNA isolated from Anabaena filaments grown under different nitrogen regimens, we observed, in addition to these transcripts, RNAV, which has previously been detected only in in vitro transcription assays and should originate from P4. However, in heterocysts, which are differentiated cells specialized in N2 fixation, RNAI was the almost exclusive glnA transcript. Analysis of PglnA::lacZ fusions containing different fragments of the glnA upstream region confirmed that fragments carrying P1, P2, or P3 and P4 have the ability to promote transcription. Mutation of the NtcA-binding site in P1 eliminated P 1-directed transcription and allowed increased use of P2. The NtcA-binding site in the P1 promoter and binding of NtcA to this site appear to be key factors in determining glnA gene expression in vegetative cells and heterocysts.

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The NtcA-dependent P1 promoter is utilized for glnA expression in N2-fixing heterocysts of Anabaena sp. strain PCC 7120

Author: Valladares Ruiz, Ana; Muro Pastor, Alicia María; Herrero Moreno, Antonia; Flores García, Enrique
Publisher: American Society for Microbiology
Year: 2004
DOI: 10.1128/JB.186.21.7337
Source: https://idus.us.es/bitstreams/1d548d6b-ff81-4151-bddf-705825fe9f95/download
JOURNAL OF BACTERIOLOGY, No . 2004, p. 7337–7343 Vol. 186, No. 21
0021-9193/04/$08.00⫹0 DOI: 10.1128/JB.186.21.7337–7343.2004
Copy igh © 2004, Ame ican Socie y o Mic obiology. All Righ s Rese ed.
The N cA-Dependen P
1
P omo e Is U ilized o glnA Exp ession in
N
2
-Fixing He e ocys s o Anabaena sp. S ain PCC 7120
Ana Vallada es, Alicia M. Mu o-Pas o , An onia He e o, and En ique Flo es*
Ins i u o de Bioquı´mica Vege al y Fo osı´n esis, Consejo Supe io de In es igaciones
Cien ı´ icas-Uni e sidad de Se illa, Se ille, Spain
Recei ed 15 Ap il 2004/Accep ed 19 July 2004
Exp ession o he glnA gene encoding glu amine syn he ase, a key enzyme in ni ogen me abolism, is subjec
o a a ie y o egula o y mechanisms in di e en o ganisms. In he ilamen ous, N
2
- ixing cyanobac e ium
Anabaena sp. s ain PCC 7120, glnA is exp essed om mul iple p omo e s ha gene a e se e al ansc ip s
whose abundance is in luenced by N cA, he ansc ip ion ac o exe ing global ni ogen con ol in cyanobac-
e ia. Whe eas RNA
I
o igina es om a canonical N cA-dependen p omo e (P
1
) and RNA
II
o igina es om a
␴
70
- ype p omo e (P
2
), RNA
IV
is in luenced by N cA bu he co esponding p omo e (P
3
) does no ha e he
s uc u e o N cA-ac i a ed p omo e s. Using RNA isola ed om Anabaena ilamen s g own unde di e en
ni ogen egimens, we obse ed, in addi ion o hese ansc ip s, RNA
V
, which has p e iously been de ec ed
only in in i o ansc ip ion assays and should o igina e om P
4
. Howe e , in he e ocys s, which a e
di e en ia ed cells specialized in N
2
ixa ion, RNA
I
was he almos exclusi e glnA ansc ip . Analysis o
P
glnA
::lacZ usions con aining di e en agmen s o he glnA ups eam egion con i med ha agmen s
ca ying P
1
,P
2
,o P
3
and P
4
ha e he abili y o p omo e ansc ip ion. Mu a ion o he N cA-binding si e in
P
1
elimina ed P
1
-di ec ed ansc ip ion and allowed inc eased use o P
2
. The N cA-binding si e in he P
1
p omo e and binding o N cA o his si e appea o be key ac o s in de e mining glnA gene exp ession in
ege a i e cells and he e ocys s.
Glu amine syn he ase is a key enzyme in ni ogen me abo-
lism in all li ing cells and cons i u es he ou e o inco po a-
ion o ino ganic ni ogen (in he o m o ammonium) in o
o ganic ma e ial in many mic oo ganisms and plan s. The glnA
gene encoding glu amine syn he ase is subjec o egula ion
and is exp essed a maximal le els when cells a e incuba ed
unde ni ogen-limi ing condi ions. Whe eas ac i a ion o ex-
p ession o glnA in en e ic bac e ia is media ed by he well-
cha ac e ized N B-N C wo-componen egula o y sys em
(27), in cyanobac e ia ansc ip ion o he glnA gene is unde
con ol o N cA, he global ni ogen con ol ansc ip ion ac-
o o hese o ganisms (19). The glu amine syn he ase p o ein
is abundan in cyanobac e ia (26), and glnA is a p edic ed
highly exp essed gene (30) whose ansc ip is eadily de ec ed
(15, 45).
The cyanobac e ia, which belong o he domain Bac e ia, a e
cha ac e ized by pe o ming oxygenic pho osyn hesis and a e
conside ed he e olu iona y p ecu so s o algal and highe -
plan chlo oplas s (17). The cyanobac e ial RNA polyme ase is
simila o he well-cha ac e ized en e obac e ial enzyme (43),
al hough he poC gene encoding he RNA polyme ase ␤⬘
subuni is spli in he cyanobac e ia in o wo genes, poC1 and
poC2, which encode polypep ides ␥and ␤⬘, which a e homol-
ogous o he N- e minal and C- e minal hal es o en e obac-
e ial ␤⬘, espec i ely (3, 53). Thus, he a chi ec u e o he
cyanobac e ial RNA polyme ase co e is ␣
2
␤␤⬘␥ ins ead o he
en e obac e ial ␣
2
␤␤⬘ (43). The p incipal RNA polyme ase ␴
ac o in Anabaena sp. s ain PCC 7120 ( he p oduc o he sigA
gene) is homologous o he ege a i e Esche ichia coli ␴
70
and
Bacillus sub ilis ␴
43
ac o s (5). Consis en ly, a numbe o cya-
nobac e ial gene p omo e s ha e been ound o bea a ⫺10 box
in he o m TAN
3
T (9, 22), and some o hem also ca y a
ecognizable ⫺35 box (42).
Al hough nume ous cyanobac e ial p omo e s do no con-
ain an ob ious ⫺35 box, some ha e an ex ended ⫺10 egion
(TGNTAN
3
T) simila o ha ound in a subclass o E. coli
p omo e s ha unc ion wi hou a ecognizable ⫺35 box (2,
10). This is he case o he p omo e o he bcLXS ope on
encoding ibulose-1,5-bisphospha e ca boxylase/oxygenase.
N cA-dependen p omo e s ep esen ano he class o p omo -
e s ha do no con ain a ecognizable ⫺35 box. These p o-
mo e s possess a ⫺10 box (TAN
3
T) and an N cA-binding si e
cha ac e ized by he signa u e sequence GTAN
8
TAC, which is
usually cen e ed a abou posi ion ⫺41.5 wi h espec o he
ansc ip ion s a si e (19). N cA belongs o he CAP amily o
bac e ial ansc ip ional egula o s, and he p omo e s uc u e
jus desc ibed is simila o ha o he class II CAP-dependen
p omo e s (7). N cA unc ions in esponse o he C/N balance
o he cell, and 2-oxoglu a a e has been iden i ied as a pu a i e
e ec o o N cA (35, 44, 46–48). The n cA gene appea s o be
au o egula o y, and n cA exp ession, which akes place a a
basal le el in he p esence o ammonium, inc eases in esponse
o ni ogen limi a ion (21, 22, 34, 38, 49).
Unde combined ni ogen limi a ion condi ions, ilamen ous
cyanobac e ia like Anabaena sp. s ain PCC 7120 di e en ia e
he e ocys s, which a e specialized cells ha a e he si es o N
2
ixa ion in ae obically g own ilamen s (13). He e ocys di e -
en ia ion does no ake place in n cA mu an s (15, 49) o in
mu an s wi h mu a ions in he de elopmen egula o y gene
he R (4, 6). The ex ensi e s uc u al and physiological di e -
* Co esponding au ho . Mailing add ess: Ins i u o de Bioquı´mica
Vege al y Fo osı´n esis, Cen o de In es igaciones Cien ı´ icas Isla de la
Ca uja, A da. Ame´ ico Vespucio s/n, E-41092 Se ille, Spain. Phone:
34 95 448 9523. Fax: 34 95 446 0065. E-mail: [email p o ec ed].
7337
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ences be ween he e ocys s and ege a i e cells a e la gely he
esul o di e en ial gene exp ession (50). Thus, o ins ance,
ni HDK encoding he ni ogenase complex is exp essed only in
he e ocys s, whe eas bcLXS is exp essed only in ege a i e
cells (13). Some genes, howe e , ha e o be exp essed in bo h
ypes o cells. This is he case o glnA (13), since glu amine
syn he ase is in ol ed in ni ogen assimila ion in he ege a i e
cells and also p o ides he pa h o inco po a ion o he am-
monium p oduced in he N
2
ixa ion eac ion in he he e ocys s
(51).
The p omo e egion o he glnA gene in Anabaena sp. s ain
PCC 7120 has a complex s uc u e and gene a es se e al di -
e en RNA species co esponding o RNA
I
o RNA
V
(Fig. 1).
RNA
I
, whose 5⬘end is loca ed 93 nucleo ides ups eam o he
glnA ansla ion s a , is mo e abundan in he absence o
ammonium han in he p esence o ammonium (45), is N cA
dependen , and o igina es om a p omo e ( ha we call P
1
)
wi h he canonical s uc u e o he N cA-dependen p omo e s
(15, 19). Indeed, N cA binds wi h high e iciency o i s binding
si e in he P
1
p omo e , and his N cA-binding si e has been
oo p in ed (37). RNA
II
, whose 5⬘end is loca ed 155 (45) o
157 (15) nucleo ides ups eam o he s a codon, is de ec ed
independen o he ni ogen sou ce, al hough i s le el is some-
wha highe in he p esence o ammonium han in he absence
o ammonium. The p omo e ha o igina es RNA
II
,P
2
,is
simila o he canonical ␴
70
-dependen p omo e s and can be
used in an E. coli s ain ca ying he Anabaena glnA gene in a
plasmid (45), as well as in in i o ansc ip ion assays wi h bo h
Anabaena and E. coli RNA polyme ases (43). RNA
III
, whose
5⬘end has been loca ed ei he 244 o 247 (45) o 196 (15)
nucleo ides ups eam o he ansla ion s a , may a ise om
p ocessing o RNA
IV
a he han ep esen a ue ansc ip ion
s a si e (42). The e is some unce ain y abou he exac 5⬘end
o RNA
IV
; i is 273 (43), 275 (15), o 266 (45) nucleo ides
ups eam o he s a codon. Howe e , he egion om nucle-
o ide 282 o nucleo ide 277 ups eam o he ansla ion s a
has a sequence ha ep esen s an accep able ␴
70
- ype ⫺10 box
(TATTAA). In e es ingly, conside ing a ew ups eam nucle-
o ides, a sequence (TGNTATTAA) ha could ep esen an
ex ended ⫺10 box is e iden . The p omo e ha gene a es
RNA
IV
,P
3
, has been desc ibed as N cA dependen (15), al-
hough i has no e iden N cA-binding si e, and i can be used
in in i o ansc ip ion assays wi h bo h Anabaena and E. coli
RNA polyme ases (43). Finally, RNA
V
, whose 5⬘end is lo-
ca ed 319 nucleo ides ups eam o he ansla ion s a , co e-
sponds o a ansc ip ha has been de ec ed only in in i o
ansc ip ion assays (43), al hough he pu a i e p omo e o
his ansc ip ion s a poin has a ecognizable ⫺10 box (42).
The complex pa e n o exp ession summa ized abo e has
been in e p e ed in e ms o exp ession o he glnA gene
mainly om a ␴
70
- ype p omo e (P
2
) in ammonium-g own
Anabaena cells and om a ni -like p omo e (P
1
, which was
la e iden i ied as an N cA- ype p omo e [15]) unde N
2
- ixing
condi ions (45). In his wo k, we show ha P
1
is he p omo e
used in he e ocys s.
MATERIALS AND METHODS
Bac e ial s ains and g ow h condi ions. Anabaena sp. s ain PCC 7120 was
g own axenically in BG11 medium (39), which con ains 17.6 mM NaNO
3
,in
BG11
0
(ni ogen- ee) medium, o in BG11
0
medium supplemen ed wi h 2 mM
NH
4
Cl and 4 mM N- is(hyd oxyme hyl)me hyl-2-aminoe hanesul onic acid
(TES)–NaOH bu e (pH 7.5). Fo pla es, he media we e solidi ied wi h sepa-
a ely au ocla ed 1% aga (Di co). Cul u es we e g own a 30°C in he ligh (75
mic oeins eins 䡠m
⫺2
䡠s
⫺1
) wi h shaking (80 o 90 pm) o liquid cul u es.
Anabaena sp. s ain PCC 7120 de i a i es ca ying a Km
Nm
gene casse e (12)
we e ou inely g own in medium supplemen ed wi h 25 ␮g o neomycin 䡠ml
⫺1
,
and s ains ca ying Sm
Sp
gene casse e C.S3 (12, 36) we e g own in medium
supplemen ed wi h 2 o 5 ␮g o spec inomycin 䡠ml
⫺1
and2 o5␮go
s ep omycin 䡠ml
⫺1
. The chlo ophyll acon en s o he cul u es we e de e mined
by using me hanolic ex ac s o cells (23).
Fo RNA isola ion, cells g owing exponen ially in BG11
0
C medium (BG11
0
medium plus 10 mM NaHCO
3
) o BG11
0
C medium supplemen ed wi h 5 o 8
mM NH
4
Cl (plus a double concen a ion o TES-NaOH bu e [pH 7.5]) and
bubbled wi h a mix u e o CO
2
and ai (1:99, ol/ ol) we e used. Fo induc ion
expe imen s, cells g own exponen ially in BG11
0
C medium supplemen ed wi h 5
o8mMNH
4
Cl we e ha es ed a oom empe a u e, washed wi h and esus-
pended in BG11
0
C medium, and hen incuba ed unde cul u e condi ions o he
numbe s o hou s indica ed below. Cul u es used o isola ion o RNA om
he e ocys s we e g own in BG11
0
C medium supplemen ed wi h 5 o 8 mM
NH
4
Cl un il he chlo ophyll aconcen a ion eached 3 o 5 ␮g䡠ml
⫺1
. Cells we e
hen washed wi h and esuspended in BG11
0
C medium and incuba ed un il
ma u e he e ocys s we e obse ed (19 h). He e ocys s we e isola ed as desc ibed
p e iously (18).
E. coli s ain DH5␣was g own in Lu ia-Be ani medium con aining, when
necessa y, 50 ␮g o ampicillin 䡠ml
⫺1
,50␮g o kanamycin 䡠ml
⫺1
,30␮go
chlo amphenicol 䡠ml
⫺1
,25␮g o s ep omycin 䡠ml
⫺1
,o 100␮go
spec inomycin 䡠ml
⫺1
.
␤-Galac osidase ac i i y. ␤-Galac osidase ac i i y was de e mined as p e i-
ously desc ibed (48) by using chlo o o m- ea ed ilamen s om shaken cul u es
FIG. 1. Sequence o he Anabaena glnA genomic egion om nucleo ide 391 ups eam o he ansla ion s a o nucleo ide 10 downs eam o
he ansla ion s a . RNA 5⬘ends iden i ied in his wo k (which do no always exac ly coincide wi h hose p e iously epo ed) a e indica ed, along
wi h he ollowing possible p omo e ea u es: ⫺10 boxes o RNA
I
, RNA
II
, and RNA
V
, ex ended ⫺10 box [⫺10 (E)] o RNA
IV
,⫺35 box o
RNA
II
, and he P
1
N cA-binding si e. The N cA- oo p in ed egion (37), including he N cA-binding si e sequence signa u e (GTAN
8
TAC), he
glnA ATG s a codon (double unde lined), and he loca ion o oligonucleo ides GA7 and GA13 used o p ime ex ension analysis a e also
indica ed. The limi s o he di e en DNA p omo e agmen s analyzed in his wo k we e as ollows: agmen C, posi ions 381 and 246; agmen
CB, posi ions 381 and 139; agmen CBA, posi ions 381 and 70; agmen B, posi ions 237 and 139; agmen BA, posi ions 237 and 70; and
agmen A, posi ions 159 and 70 (posi ions indica e nucleo ides ups eam om he glnA ansla ion s a ).
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ha we e g own in BG11
0
medium con aining NH
4
⫹
and incuba ed o 3 days in
BG11
0
medium wi h ai le els o CO
2
. One uni o ␤-galac osidase ac i i y
co esponded o p oduc ion o 1 ␮mol o o-ni ophenol 䡠min
⫺1
. The da a p e-
sen ed below a e he means and s anda d de ia ions o esul s ob ained wi h
h ee o six independen cul u es. The p o ein concen a ion was de e mined by
a modi ied Low y p ocedu e (24) by using 0.2-ml aliquo s o he cul u es.
Mu agenesis o he N cA-binding si e in he glnA P
1
p omo e . The deoxyoli-
gonucleo ide p ime s used in his wo k a e shown in Table 1. Si e-di ec ed
mu agenesis o he P
1
p omo e N cA-binding si e was ca ied ou by PCR as
desc ibed p e iously (1). The mu agenic oligonucleo ides used we e GA9 and
GA10, and he lanking oligonucleo ides we e GA1 and GA7; pAN503, which
con ains he ups eam egion and coding sequence o he glnA gene (14), was
used as he empla e. A e cloning o he PCR-gene a ed agmen s, he inse
o he plasmid gene a ed, pCSAV117, con aining he mu a ed e sion (CBA*) o
he glnA ups eam egion, was sequenced by using oligonucleo ide GA6 in o de
o check ha i con ained only he desi ed change (CAT ins ead o GTA).
Cons uc ion o Anabaena s ains wi h ansc ip ional usions. Di e en ag-
men s om he glnA gene ups eam egion we e ampli ied by PCR by using
plasmid pAN503 as he empla e and oligonucleo ides GA1 plus GA2, GA1 plus
GA4, GA1 plus GA6, GA3 plus GA4, GA3 plus GA6, and GA5 plus GA6, which
esul ed in agmen s C, CB, CBA, B, BA, and A, espec i ely (see Fig. 3). The
ampli ied p oduc s we e cloned in ec o pGEM-T (P omega). SphI/SalI ag-
men s om he esul ing plasmids (con aining he cloned agmen ) and om
plasmid pCSAV117 (which bea s agmen CBA*) we e inse ed be ween SphI
and SalI si es in ec o pIC20R (25). A 2-kb Sp
Sm
gene casse e wi h HindIII
ends was inse ed in o he unique HindIII si e o pIC20R. A BamHI agmen
om pPE20 con aining he p omo e less lacZ gene (20) was cloned in o a
BamHI si e jus a e he glnA p omo e agmen . A plasmid wi h no p omo e
was also cons uc ed by using he same s eps and was used as a nega i e con ol.
In o de o in eg a e hese cons uc s bea ing ansc ip ional usions in o he
cyanobac e ial genome, hey we e ans e ed o plasmid pCSAV81. This plas-
mid consis s o pCSAM28, which con ains a agmen o he nucA egion om
Anabaena sp. s ain PCC 7120 cloned be ween he EcoRI and EcoRV si es o
pBR322 (31), in which he nucA gene was mu a ed by diges ion wi h HindIII and
illing in wi h he Klenow enzyme ( his inac i a ion was necessa y because he
inc ease in nucA exp ession di ec ed om he Km
casse e inse ed ups eam o
his gene could be le hal o he E. coli hos ). BglII agmen s con aining he Sm
Sp
casse e, he p omo e agmen , and he lacZ gene we e liga ed o BglII-
diges ed pCSAV81, gene a ing plasmids pCSAV44, pCSAV45, pCSAV46,
pCSAV47, pCSAV48, pCSAV49, and pCSAV127 con aining p omo e ag-
men s C, CB, CBA, B, BA, A, and CBA*, espec i ely, and pCSAV50 con aining
no p omo e agmen .
In i o-gene a ed cons uc s ca ying ansc ip ional usions be ween di e en
agmen s o he glnA ups eam egion and he lacZ gene we e ans e ed by
conjuga ion (52) o Anabaena sp. s ain PCC 7120 and, as indica ed below, also
o s ain CSE2 (n cA [15]) o gene a e s ains bea ing hese ansc ip ional
usions in he nucA genomic egion. Fo gene a ion o hese s ains, E. coli
HB101 con aining plasmid pCSAV44, pCSAV45, pCSAV46, pCSAV47,
pCSAV48, pCSAV49, pCSAV50, o pCSAV127 and helpe plasmids pRL528
and pRL591-W45 (11) was mixed wi h E. coli ED8654 ca ying he conjuga i e
plasmid pRL443 and hen wi h Anabaena sp. Exconjugan s we e isola ed and
iden i ied as clones esis an o neomycin, s ep omycin, and spec inomycin, and
hei ch omosome s uc u e in he nucA egion was con i med by Sou he n
analysis.
DNA and RNA isola ion and analysis. To al DNA (8) and RNA (34) om
Anabaena sp. s ain PCC 7120 and i s de i a i es we e isola ed as p e iously
desc ibed. Sequencing was ca ied ou by he dideoxy chain e mina ion me hod
by using a T
7
Sequencing ki (Ame sham Biosciences) and [␣-
35
S] hio-dATP.
DNA agmen s we e pu i ied om aga ose gels wi h a Geneclean II ki (Bio
101). Plasmid isola ion om E. coli, ans o ma ion o E. coli, diges ion o DNA
wi h es ic ion endonucleases, liga ion wi h T4 ligase, and PCR we e pe o med
by s anda d p ocedu es (1, 41).
Sou he n analysis was ca ied ou by s anda d me hods by using Hybond-N
⫹
memb anes (Ame sham Biosciences). Fo No he n analysis, 70 ␮g o RNA was
loaded pe lane and elec opho esed in 1% aga ose dena u ing o maldehyde
gels. T ans e and ixa ion o Hybond-N
⫹
memb anes (Ame sham Biosciences)
we e ca ied ou by using 0.1 M NaOH. Hyb idiza ion was pe o med a 65°C
acco ding o he ecommenda ions o he manu ac u e s o he memb anes. The
ni H and bcL p obes we e in e nal agmen s o hese genes ampli ied by PCR.
All p obes we e
32
P labeled wi h a Ready o Go DNA labeling ki (Ame sham
Biosciences) by using [␣-
32
P]dCTP.
P ime ex ension analysis was ca ied ou as desc ibed p e iously (33). The
oligonucleo ides used o analysis o he glnA ansc ip we e GA7 and GA13.
Plasmid pAN503 was used o gene a e dideoxy sequencing ladde s by using he
same p ime s. Fo de e mina ion o ansc ip ion s a poin s o P
glnA
::lacZ
usions, oligonucleo ide LZ3 (complemen a y o a sequence loca ed ups eam o
he lacZ gene) was used as he p ime , and plasmid pCSAV127 was used o
gene a e dideoxy sequencing ladde s by using he same p ime . Images o a-
dioac i e il e s we e ob ained and quan i ied by using a Cyclone s o age phos-
pho sys em and he Op iQuan image analysis so wa e (Packa d). P ime ex-
ension analyses we e ca ied ou wi h i e (p ime ex ensions wi h he GA7 and
GA13 p ime s) o ou (p ime ex ensions wi h he lacZ p ime ) independen
RNA p epa a ions o wi h wo independen p epa a ions in he case o he e o-
cys RNA, and a ep esen a i e example is shown in each case below.
Band shi assays and DNase I oo p in ing. DNA agmen s o be used in
elec opho e ic mobili y shi assays we e ob ained by PCR ampli ica ion. Oli-
gonucleo ides GA1, GA2, GA3, GA4, GA5, and GA6 (Table 1; see Fig. 3A) and
plasmids pAN503 and pCSAV117 we e used o PCR ampli ica ion o he glnA
ups eam egion (wild- ype and mu a ed e sions, espec i ely). Oligonucleo-
ides (pUC/M13 o wa d and e e se p ime s) and plasmid pBluesc ip SK(⫹)
we e used o ampli ica ion o a DNA agmen ha was used as a nega i e
con ol. Binding assays we e ca ied ou as desc ibed p e iously (28) by using as
a sou ce o N cA a cell ex ac (1.4 ␮g o p o ein) o E. coli s ain
BL21(pCSAM70, pREP4), which o e p oduces he Anabaena sp. s ain PCC
7120 N cA p o ein (33), and, as a con ol, a cell ex ac o E. coli s ain
BL21(pQE9, pREP4).
The DNase I p o ec ion assay was ca ied ou as desc ibed p e iously (16). The
DNA used was he inse o pCSAV26 (con aining agmen CBA in he pIC20R
ec o ) limi ed by BamHI-EcoRV o HindIII-SacI si es and 3⬘end labeled wi h
he DNA polyme ase Klenow agmen and [␣-
32
P]dCTP (3,000 Ci 䡠mmol
⫺1
). A
cell ex ac o he Anabaena N cA-o e exp essing E. coli s ain BL21(pCSAM70,
pREP4) was used as a sou ce o N cA (33).
RESULTS
T ansc ip ion s a poin s. To in es iga e he pu a i e an-
sc ip ion s a poin (s) used o he glnA gene in he e ocys s o
Anabaena sp. s ain PCC 7120, o al RNA was ex ac ed om
he e ocys s isola ed om N
2
- ixing ilamen s. This RNA p ep-
a a ion did no show any de ec able hyb idiza ion wi h an bcL
p obe, whe eas i exhibi ed s ong hyb idiza ion wi h a ni H
p obe, indica ing ha i consis ed o highly speci ic he e ocys
RNA (da a no shown). P ime ex ension analysis wi h he
GA7 (da a no shown) o GA13 (Fig. 2A) p ime was pe -
o med wi h he he e ocys RNA p epa a ion and, as con ols,
wi h RNA p epa a ions om whole ilamen s g own wi h am-
monium o wi h N
2
as he ni ogen sou ce. Consis en wi h
p e iously epo ed da a (15, 45), we obse ed se e al 5⬘ends
o glnA ansc ip s when RNA isola ed om whole ilamen s
was used. T ansc ip ion s a poin s loca ed 93 (co esponding
o RNA
I
) and 274 (RNA
IV
) nucleo ides ups eam o he glnA
s a codon we e used a somewha highe le els in dia-
zo ophically g own ilamen s han in ammonium-g own ila-
men s, whe eas he ansc ip ion s a poin loca ed 157 nucle-
TABLE 1. Deoxyoligonucleo ide p ime s used in his wo k
P ime Sequence (5⬘-3⬘)
GA1 ...................................AAGCCTGTTACTGCATCGCGCATTCC
GA2 ...................................CAGATAGATTGTTTTTGTGCC
GA3 ...................................GGATTTTATGTCAAAGTTGACCCC
GA4 ...................................TACAGAACGTCTGGATTACAGG
GA5 ...................................CGAAAGAAAGGTTAATATTACCTG
GA6 ...................................CGAAACAAAGTTGATGAC
GA7 ...................................CTTTTCAAGACTTCTTGTGGGGG
GA9 ...................................CCAGACGTTCTCATACAAAGACTAC
GA10 .................................GTAGTCTTTGTATGAGAACGTCTGG
GA13 .................................CTCCTTCTCTGCCAATTTC
LZ3 ....................................CAATCACTGCTCAATGCCC
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o ides ups eam o he s a codon (co esponding o RNA
II
)
was used a simila le els in ammonium- and N
2
-g own cells
(Fig. 2A). The p e iously desc ibed RNA
III
, conside ed o be
a deg ada ion p oduc o RNA
IV
, was obse ed only in some
expe imen s and is no e iden in Fig. 2. Howe e , we obse ed
a ansc ip ion s a poin 318 nucleo ides ups eam o he
ansla ion s a ha co esponded o RNA
V
, a ansc ip p e-
iously de ec ed only in in i o ansc ip ion assays (43).
RNA
V
showed a egula o y pa e n simila o ha o RNA
IV
.
In con as o hese esul s ob ained wi h RNA isola ed om
whole ilamen s, he he e ocys RNA p epa a ion p oduced a
s ong signal ha co esponded o RNA
I
and only a ain signal
co esponding o RNA
IV
.
To es he e ec o a he R mu a ion on he use o he glnA
ansc ip ion s a poin s, RNA isola ed om ilamen s g own
wi h ammonium o g own wi h ammonium and subjec ed o
ni ogen dep i a ion o se e al hou s was used in p ime ex-
ension assays wi h he GA7 (da a no shown) o GA13 (Fig.
2B) p ime . RNA p epa a ions om Anabaena sp. s ain
DR884a (he R [4]) and, as con ols, om s ain CSE2 (n cA
[15]) and wild- ype s ain PCC 7120 we e used. Whe eas in he
n cA mu an RNA
I
was no de ec able and RNA
IV
was in-
duced a a low le el (15), bo h RNAs we e exp essed in he
he R mu an a le els simila o hose ound in he wild ype
(Fig. 2B). RNA
V
was also N cA dependen bu independen o
He R (Fig. 2B).
T ansc ip ional usions. To u he analyze he p omo e o
he glnA gene, di e en DNA agmen s o he glnA ups eam
egion we e cloned in on o a p omo e less lacZ gene, and
he esul ing cons uc s we e ans e ed o Anabaena sp. s ain
PCC 7120. A schema ic ep esen a ion o he DNA agmen s
used is shown in Fig. 3A. Each agmen was ampli ied by PCR
and cloned jux aposed o he C.S3 gene casse e, which bea s
ansc ip ion e mina o s, and he lacZ gene (Fig. 3B), and
clones wi h he p omo e agmen o ien ed so ha i di ec ed
exp ession o lacZ we e chosen (see Ma e ials and Me hods
o de ails). These cons uc s we e inco po a ed in o he nucA
egion o he Anabaena genome, which is loca ed in he ␣
megaplasmid (32). This egion was chosen because he nucA
gene encodes a nuclease ha is dispensable o g ow h o his
cyanobac e ium (31). The usions we e inco po a ed in o
Anabaena sp. s ain PCC 7120 as desc ibed in Ma e ials and
Me hods, which p oduced he genomic s uc u e shown in Fig.
3B. To ensu e ha a co ec clone, ca ying a P
glnA
::lacZ u-
sion, was chosen o u he cha ac e iza ion, he s uc u e o
he nucA egion o wo exconjugan s o each cons uc was
con i med by Sou he n analysis (da a no shown). Like he
pa en al s ain PCC 7120, hese s ains we e able o de elop
he e ocys s and o g ow on N
2
(da a no shown).
Analysis o he lacZ-ca ying s ains showed ha only a low
ac i i y o ␤-galac osidase, 0.5 ⫾0.02 mU 䡠mg o p o ein
⫺1
,
was p oduced in he absence o a p omo e agmen (s ain
bea ing he con ol cons uc om plasmid pCSAV50). Inco -
po a ion o a glnA ups eam agmen , agmen C, B, o A
(Fig. 3), esul ed in ␤-galac osidase ac i i ies o 5.1 ⫾1.1
mU 䡠mg o p o ein
⫺1
( agmen C), 1.7 ⫾0.46 mU 䡠mg o
FIG. 2. T ansc ip ion s a poin s o he Anabaena glnA gene.
P ime ex ension analysis was ca ied ou wi h p ime GA13, and a
sequencing ladde was gene a ed wi h he glnA-con aining plasmid
pAN503 and he same p ime . (A) RNA isola ed om ammonium-
g own ilamen s (lane 1), om N
2
-g own ilamen s (lane 2), and om
isola ed he e ocys s (lane 3) o Anabaena sp. s ain PCC 7120.
(B) RNA isola ed om ilamen s o wild- ype s ain PCC 7120 (WT),
n cA s ain CSE2 (n cA), and he R s ain DR884a (he R) g own wi h
ammonium (lanes 0) o g own wi h ammonium and incuba ed o 9 h
(lanes 9) o 24 h (lanes 24) wi hou combined ni ogen. The a ow-
heads indica e he iden i ied RNA 5⬘ends.
FIG. 3. S uc u e o P
glnA
::lacZ usions. (A) Schema ic ep esen a-
ion o he egion om nucleo ide 381 o nucleo ide 70 ups eam o he
Anabaena glnA gene. The loca ions o he ansc ip ion s a poin s
gene a ing RNA
I
, RNA
II
, RNA
IV
, and RNA
V
, he si e de ining
RNA
III
, and he oligonucleo ides used o PCR ampli ica ion o he
agmen s shown below a e indica ed. (B) S uc u e o he nucA
genomic egion in he s ains ca ying P
glnA
::lacZ usions. The di e en
p omo e agmen s shown in panel A ( ep esen ed by a solid a ow)
we e cloned jux aposed o C.S3 and lacZ o di ec exp ession o lacZ.
The app oxima e loca ion o he LZ3 oligonucleo ide p ime is indi-
ca ed. No e ha an app oxima ely 2.2-kb agmen o he nucA egion
is duplica ed in hese s ains.
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p o ein
⫺1
( agmen B), and 3.8 ⫾0.7 mU 䡠mg o p o ein
⫺1
( agmen A). These esul s indica ed ha he e was p omo e
ac i i y o he DNA agmen s es ed, bu he ␤-galac osidase
ac i i ies exhibi ed by he di e en s ains should no be com-
pa ed o each o he , since he p omo e agmen s gene a ed
ansc ip s wi h di e en 5⬘ egions ha may ha e had di e en
s abili ies and/o ansla ion e iciencies. On he o he hand,
␤-galac osidase ac i i ies d i en by agmen s A, BA, and CBA
o by agmen s B and CB can be compa ed. F agmen BA
d o e a ␤-galac osidase ac i i y o 12.2 ⫾1.9 mU 䡠mg o p o-
ein
⫺1
, which is highe han he ac i i y d i en by agmen A.
In con as , agmen s CB (1.5 ⫾0.56 mU 䡠mg o p o ein
⫺1
)
and CBA (10.6 ⫾2.3 mU 䡠mg o p o ein
⫺1
) di ec ed ac i i ies
ha we e simila o hose p oduced by agmen s B and BA,
espec i ely.
Mu a ion o he N cA-binding si e. As shown abo e, use o
he P
1
p omo e ha gene a es RNA
I
is dependen on N cA
(15). This p omo e ca ies an N cA-binding si e (GTAN
8
TAC) ha is cen e ed a posi ion ⫺41.5 wi h espec o he
ansc ip ion s a poin . To cha ac e ize he ole o his N cA-
binding si e in ansc ip ion om he glnA p omo e , we gen-
e a ed a mu a ed CBA agmen (CBA*) in which he GTA
iple o he N cA-binding si e was eplaced by a CAT iple
(see Ma e ials and Me hods o de ails). This mu a ed ag-
men was inco po a ed in o he lacZ epo e sys em and ans-
e ed o Anabaena sp. s ain PCC 7120, whe e i di ec ed a
␤-galac osidase ac i i y o 154.8 ⫾6.7 mU 䡠mg o p o ein
⫺1
,
which is abou 15- old highe han he ac i i y obse ed wi h
he o iginal CBA agmen .
To es he e ec o mu a ion o he N cA-binding si e on he
use o he glnA p omo e (s), p ime ex ension assays we e
pe o med wi h a p ime om he lacZ ups eam egion and
RNA isola ed om ammonium-g own ilamen s incuba ed o
9 h in he absence o combined ni ogen. A e ans e o he
CBA::lacZ and CBA*::lacZ cons uc s o s ain CSE2 (n cA),
hese expe imen s we e ca ied ou in he wild- ype and n cA
gene ic backg ounds. The CBA agmen p oduced a se o
p ime ex ension p oduc s ha included he same RNA species
ha we e obse ed wi h he na i e glnA p omo e (Fig. 4A,
lane 1) (RNA
V
was no shown in his expe imen ). Howe e ,
RNA
I
was no obse ed in an n cA mu an backg ound (Fig.
4A, lane 2). These esul s con i med he p ope ope a ion as a
p omo e o agmen CBA cloned in on o lacZ. When he
mu a ed CBA agmen ( agmen CBA*) was analyzed, an-
sc ip ion was obse ed o o igina e mainly om a ansc ip ion
s a poin co esponding o RNA
II
, and RNA
I
was de ec ed
nei he in he wild ype (Fig. 4B, lane 2) no in he n cA
backg ound (Fig. 4B, lane 3).
Binding o N cA. The glnA P
1
p omo e bea s a e y e icien
N cA-binding si e (37). To es o he possible N cA in e ac-
ions wi h he Anabaena glnA ups eam egion used in his
wo k, binding o N cA o he di e en p omo e agmen s was
es ed by a band shi assay. Binding was obse ed as long as
he sequences co esponding o P
1
we e p esen in he DNA
agmen es ed bu did no ake place when he N cA-binding
si e in P
1
was mu a ed (Fig. 5). DNase I oo p in ing o a DNA
agmen co e ing he whole glnA ups eam egion ha we
in es iga ed ( agmen CBA) did no show any N cA-sensi i e
egion in addi ion o he egion p e iously desc ibed by Ra-
masub amanian e al. (37), which co esponds o he N cA-
binding si e in he P
1
p omo e ( esul s no shown).
DISCUSSION
The glnA gene o Anabaena sp. s ain PCC 7120 appea s o
be ansc ibed om ou independen ansc ip ion s a
poin s, which gi e ise o he RNA species known as RNA
I
,
RNA
II
, RNA
IV
, and RNA
V
(Fig. 1). These ou RNA species
a e obse ed in ammonium-g own Anabaena ilamen s; how-
e e , whe eas RNA
II
appea s o be cons i u i e, RNA
I
,
RNA
IV
, and RNA
V
a e induced a e ni ogen dep i a ion (15;
his s udy). DNA agmen s ca ying sequences ups eam om
RNA
I
( agmen A), RNA
II
( agmen B), and RNA
IV
( ag-
men C) d i e ansc ip ional ac i i y when hey a e used o a
lacZ epo e gene, demons a ing ha hese RNA species
de ine ue gene p omo e s (P
1
,P
2
, and P
3
, espec i ely). F ag-
men C also co e s RNA
V
, and he e o e an addi ional p o-
mo e , P
4
, may be p esen in his DNA agmen . F agmen BA
p oduces highe ␤-galac osidase ac i i y han agmen A,
which, consis en wi h de ec ion o RNA
II
and RNA
I
in sam-
ples o RNA isola ed om whole ilamen s, sugges s ha he e
FIG. 4. T ansc ip ion s a poin s o he CBA and CBA*
P
glnA
::lacZ usions in Anabaena sp. s ains PCC 7120 (wild ype) and
CSE2 (n cA). P ime ex ension analysis was ca ied ou wi h p ime
LZ3 (Fig. 3B), and a sequencing ladde was gene a ed wi h plasmid
pCSAV127 and he same p ime . (A) RNA isola ed om ilamen s o
s ains PCC 7120 (lane 1) and CSE2 (lane 2) ca ying he CBA::lacZ
usion g own wi h ammonium and incuba ed o 9 h wi h no sou ce o
combined ni ogen. (B) RNA isola ed om ilamen s o s ain PCC
7120 ca ying CBA::lacZ (lane 1) o CBA*::lacZ (lane 2) o o s ain
CSE2 ca ying CBA*::lacZ (lane 3) g own wi h ammonium and incu-
ba ed o 9 h wi h no sou ce o combined ni ogen.
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is simul aneous ope a ion o he P
2
and P
1
p omo e s. In con-
as , al hough agmen C i sel d i es a subs an ial ␤-galac-
osidase ac i i y and RNA
IV
and RNA
V
ha e been obse ed in
di e en RNA samples, agmen s CB and CBA do no di ec
highe le els o ac i i y han agmen s B and BA, espec i ely.
The eason o his lack o s imula ion o ␤-galac osidase p o-
duc ion by agmen C is unknown, bu he p esence in ag-
men B o he pu a i e RNA p ocessing si e ha gene a es
RNA
III
(Fig. 1 and 3), which could in e e e wi h ansc ip ion
d i en by p omo e s P
3
and P
4
, should be no ed.
In he e ocys s, exp ession akes place essen ially as RNA
I
,
indica ing ha P
1
ep esen s he glnA p omo e in his cell ype
(Fig. 2A). A ansc ip co esponding o RNA
I
has also been
shown o ep esen he main glnA ansc ip du ing he e ocys
di e en ia ion (49) o in cells s a ed o ni ogen unde an-
ae obic condi ions (45). Howe e , P
1
is no a p omo e ha is
used exclusi ely in he he e ocys s since i is also u ilized in
ege a i e cells (i.e., in cells o ilamen s g own wi h ammo-
nium) (Fig. 2A) and in a he R mu an (a s ain ha does no
de elop he e ocys s) (Fig. 2B). P
1
ep esen s a canonical
N cA- ype p omo e whose use is s ic ly dependen on N cA
(Fig. 2B and 4A) (15). Mu a ion o he N cA-binding si e in P
1
h ough eplacemen o he GTA iple by CAT elimina es
N cA binding in i o (Fig. 5) and he use o P
1
in i o (Fig.
4B), indica ing he impo ance o his N cA-binding si e o
N cA-dependen ansc ip ion ac i a ion. The amoun o N cA
p esen in ege a i e cells (34, 38) appea s o de e mine le els
o binding o N cA o he e icien N cA-binding si e in P
1
ha
a e su icien o he use o P
1
in his ype o cells, while he
high le els o ac i e N cA likely p esen in he he e ocys s (34,
37, 49) should con ibu e o s ong use o P
1
in hese di e en-
ia ed cells.
P
2
ep esen s a canonical ␴
70
- ype p omo e (Fig. 1) ha is
used in ege a i e cells bu no in he e ocys s (Fig. 2A). The
p esence o he N cA-binding si e in P
1
appea s o a ec he
ope a ion o P
2
. Thus, mu a ion o he N cA-binding si e in P
1
esul s in a d ama ic inc ease in ␤-galac osidase ac i i y and in
inc eased ansc ip ion om P
2
(Fig. 4B). Howe e , when e-
sul s wi h he CBA and CBA* agmen s a e compa ed, he
inc ease in RNA
II
le els de ec ed by p ime ex ension analysis
is no quan i a i ely compa able o he obse ed inc ease in
␤-galac osidase ac i i y, sugges ing ha , in addi ion o an-
sc ip ional ac i i y, ansc ip s abili y o ansla ion e iciency
may a ec he p oduc ion o ␤-galac osidase. None heless, be-
cause he N cA-binding si e in P
1
( oo p in ed egion in Fig. 1)
is 9 bp downs eam o he RNA
II
ansc ip ion s a poin ,
N cA bound o his si e could ep ess P
2
ei he by occluding
RNA polyme ase binding o by inhibi ing p omo e escape (29,
40). Rep ession by N cA migh he e o e con ibu e o he lack
o use o P
2
in he e ocys s. Howe e , inc eased ansc ip ion
om P
2
is ha dly obse ed when he n cA gene, a he han he
N cA-binding si e, is inac i a ed (Fig. 2B and 4A). Apa om
he possible ep esso ole o N cA, i is possible ha he
N cA-binding sequence i sel in e e es wi h he use o P
2
.
P omo e s P
3
and P
4
a e posi i ely in luenced by N cA,
al hough sequence sc u iny does no pe mi iden i ying any o
hese p omo e s as an N cA- ype p omo e . N cA-dependen
p omo e s ha canno be ecognized as N cA- ype p omo e s
ha e also been desc ibed o some o he Anabaena genes,
sugges ing ha he e is indi ec ope a ion o N cA. This is he
case o he he R gene, which in Anabaena sp. s ain PCC 7120
is ansc ibed om ou p omo e s, wo o which a e N cA
dependen bu do no con ain sequences ma ching he consen-
sus sequence o N cA-ac i a ed p omo e s (34). Lack o bind-
ing o N cA o agmen C (Fig. 5) is consis en wi h indi ec
egula ion by N cA o he glnA P
3
and P
4
p omo e s.
To summa ize, exp ession o he glnA gene, which encodes
he key ni ogen assimila ion enzyme glu amine syn he ase,
akes place in Anabaena sp. s ain PCC 7120 om a se o
p omo e s whose u iliza ion is in luenced by he global N-
con ol ansc ip ion ac o N cA. Whe eas he u iliza ion o
P
1
is s ic ly dependen on he binding o N cA o his p o-
mo e , ope a ion o p omo e s P
3
and P
4
appea s o be indi-
ec ly dependen on N cA. In con as , he N cA-binding si e in
P
1
in e e es wi h ansc ip ion om he P
2
p omo e .
ACKNOWLEDGMENTS
We hank J. Casadesu´s, R. Dixon, and E. San e o o use ul discus-
sions.
This wo k was suppo ed by g an s BMC2002-03902 and BMC2001-
0509 om Minis e io de Ciencia y Tecnologı´a, Spain.
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