scieee Open visual document viewer

A Single Zinc Finger Motif in the Silencing Factor Rest Represses the Neural-Specific Type II Sodium Channel Promoter.

Peral Rubio, María José; Tapia Ramírez, José; Eggen, Bart J. L.; Toledo Aral, Juan José; Mandel, Gail

Abstract

The type II voltage-dependent sodium chan- nel is present in neuronal cells, where it mediates the prop- agationofnerveimpulses.RestrictedexpressionofthetypeII sodium channel gene to neurons is due, at least in part, to binding of the repressor protein REST (also termed NRSF or XBR) to the RE1 (also called NRSE) sequence in the type II sodium channel gene. Previous studies have shown that a domain in REST containing eight GL1-Kru ̈ppel zinc finger motifs mediates DNA binding. Deletional and GAL4-fusion geneanalysesnowrevealrepressordomainsthatlieoutsideof the DNA-binding domain in both the amino and carboxyl termini of REST. Mutational analysis further identifies a single zinc finger motif in the carboxyl-terminal domain as beingessentialforrepressingtypeIIsodiumchannelreporter genes. These studies reveal two domains in REST that may mediate interactions with other proteins involved in restrict- ingexpressionofalargesetofgenestothevertebratenervous system.

Full text

P oc. Na l. Acad. Sci. USA Vol. 94, pp. 1177–1182, Feb ua y 1997 Biochemis y A single zinc inge mo i in he silencing ac o REST ep esses he neu al-speci ic ype II sodium channel p omo e (ne ous sys em y ansc ip ion y ep esso s) JOSE ´TAPIA-RAMI ´REZ*, BART J. L. EGGEN,MARIA J. PERAL-RUBIO,JUAN J. TOLEDO-ARAL†,AND GAIL MANDEL‡ Depa men o Neu obiology and Beha io and Ins i u e o Cell and De elopmen al Biology, S a e Uni e si y o New Yo k a S ony B ook, S ony B ook, NY 11794-5230 Communica ed by William Lenna z, S a e Uni e si y o New Yo k, S ony B ook, NY, Decembe 16, 1996 ( ecei ed o e iew No embe 18, 1996) ABSTRACT The ype II ol age-dependen sodium chan- nel is p esen in neu onal cells, whe e i media es he p op- aga ion o ne e impulses. Res ic ed exp ession o he ype II sodium channel gene o neu ons is due, a leas in pa , o binding o he ep esso p o ein REST (also e med NRSF o XBR) o he RE1 (also called NRSE) sequence in he ype II sodium channel gene. P e ious s udies ha e shown ha a domain in REST con aining eigh GL1-K u¨ppel zinc inge mo i s media es DNA binding. Dele ional and GAL4- usion gene analyses now e eal ep esso domains ha lie ou side o he DNA-binding domain in bo h he amino and ca boxyl e mini o REST. Mu a ional analysis u he iden i ies a single zinc inge mo i in he ca boxyl- e minal domain as being essen ial o ep essing ype II sodium channel epo e genes. These s udies e eal wo domains in REST ha may media e in e ac ions wi h o he p o eins in ol ed in es ic - ing exp ession o a la ge se o genes o he e eb a e ne ous sys em. The abili y o gene a e ac ion po en ials is o en due o he p esence o ol age-dependen sodium channels in he plasma memb anes o he exci able cells. Sodium channels a e en- coded by a la ge mul igene amily, and membe s o his amily a e s uc u ally dis inc and exp essed in a issue-speci ic manne ( e iewed in e . 1). The ype II sodium channel gene (2, 3) is exp essed o high le els exclusi ely in neu ons in he cen al ne ous sys em (4, 5). Because o his selec i e exp es- sion pa e n, he ype II sodium channel has p o ided an excellen model o s udies o he mechanisms egula ing neu al-speci ic gene exp ession. Type II sodium channel epo e genes con aining 1050 bp o 59 lanking sequence a e exp essed in neu onal cell lines bu no in nonneu onal cells, consis en wi h exp ession o he endogenous gene. Dele ional analysis has iden i ied a 23-bp elemen in he ype II sodium channel egula o y egion, e med ep esso elemen 1 (RE1), ha p e en s exp ession o ype II epo e genes in nonneu onal cell ypes (6, 7). Remo al o he RE1 esul s in app oxima ely 80- old de e- p ession o he ype II sodium channel epo e gene speci i- cally in nonneu onal cell ypes. Rep esso elemen s wi h sequences and unc ional p ope ies simila o hose o he ype II sodium channel RE1 a e p esen in he egula o y egion o se e al o he genes exp essed exclusi ely in he ne ous sys em ( e iewed in e . 8), including SCG10 (9, 10), synapsin (11), he b 1 subuni o he nico inic ace ylcholine ecep o (12), he musca inc M4 ecep o (13, 14), and neu al–glial cell adhesion molecule (15). The widesp ead occu ence o RE1-like se- quences in di e en genes sugges s a mo e global ole o ep ession in es ic ing gene exp ession o he ne ous sys em. Recombinan RE1-silencing ansc ip ion ac o (REST) is su icien o ep ess epo e genes con aining RE1-like a ge sequences in co ans ec ion analyses o neu onal cells (8, 16, 17). The deduced p ima y s uc u e o REST does no e eal any amino acid homologies which would poin o ep esso domains. Howe e , p e ious s udies sugges ed ha he DNA- binding and ep esso domains o REST we e physically dis inc . The REST DNA-binding domain was iden i ied o ig- inally, in a gene ic sc een in yeas , as a clus e o eigh GL1-K u¨ppel class C 2 H 2 (Cys 2 His 2 ) zinc inge s (16). Exp es- sion in skele al muscle cells o a po ion o REST con aining hese zinc inge s esul ed in de ep ession o co ans ec ed ype II epo e genes (16). This esul sugges ed ha he amino- e minal zinc inge s we e ac ing as a dominan nega i e mu an by in e e ing wi h binding o he endogenous REST p o ein o he RE1 a ge si e. The esul u he sugges ed ha he domains equi ed o ep ession mus be loca ed elsewhe e in he molecule. I is clea , om s udies o bo h p oka yo es and euka yo es, ha se e al di e en mechanisms ha e e ol ed o ep essing gene exp ession. Despi e he impo ance o nega i e gene egula ion, he molecula componen s equi ed o his mech- anism a e only beginning o eme ge. REST-media ed ep es- sion is cell- ype speci ic, and REST ep esses minimal p o- mo e s ha do no equi e ac i a o s o ansc ip ion (6, 9). Thus, REST p o ides an excellen model o s udying he molecula basis o his class o ep esso s. In his s udy we sough o pe o m a s uc u e– unc ion analysis o REST o he pu pose o elucida ing po en ially impo an domains by which REST migh in e ac wi h he ansc ip ional machin- e y. We ha e iden i ied, using a dele ional and GAL4- usion gene app oach, wo dis inc ep esso domains in REST. As p edic ed by he ea lie s udies, exp ession o he DNA- binding domain alone in neu onal PC12 cells did no esul in ep ession o ype II epo e genes. Ra he , dis inc domains in he amino and ca boxyl e mini we e iden i ied ha we e each pa ially equi ed and su icien o ep ess he ype II p omo e . The ca boxyl- e minal domain con ains a p edic ed zinc inge mo i , and mu a ions ha des oy he inge s uc- u e abolish ep ession. I is likely ha he wo REST domains The publica ion cos s o his a icle we e de ayed in pa by page cha ge paymen . This a icle mus he e o e be he eby ma ked ‘‘ad e isemen ’’ in acco dance wi h 18 U.S.C. §1734 solely o indica e his ac . Copy igh q1997 by THE NATIONAL ACADEMY OF SCIENCES OF THE USA 0027-8424y97y941177-6$2.00y0 PNAS is a ailable online a h p:yywww.pnas.o g. Abb e ia ions: RE1, ep esso elemen 1; REST, RE1-silencing an- sc ip ion ac o ; NRSF, neu al- es ic i e silencing ac o ; UAS, up- s eam ac i a ing sequence; CMV, cy omegalo i us; CAT, chlo am- phenicol ace yl ans e ase. *P esen add ess: Depa amen o de Gene ica y Biologia Molecula , Cen o de In es igacion y de Es udios A anzados del Ins i u o Poli ecnico Nacional, A . Ins i u o Poli ecnico Nacional No. 2508, Col. San Ped o Zaca enco, Mexico, D.F. cp 07300. †P esen add ess: Depa men o Physiology and Biophysics, School o Medicine, Uni e si y o Se ille, 41009 Se ille, Spain. ‡To whom ep in eques s should be add essed. 1177 a e si es o in e ac ions wi h o he ac o s ha a e equi ed o ep ession o he se o genes con aining RE1 sequences. METHODS Plasmid Cons uc ions. The plasmid REEX1 (amino acids 1–1097) is a de i a i e o he plasmid REST-EXPRESS (16) gene a ed by subcloning a 4.03-kb EcoRI agmen con aining he en i e REST coding sequence in o he EcoRI si e o pcDNAI-Amp (In i ogen). Cons uc s encoding pa ial seg- men s o he REST p o ein we e gene a ed as ollows: A pa ial cDNA clone e med p73 (amino acids 73–545), con- aining he deduced eigh zinc inge s o he DNA-binding domain, has been desc ibed (16). REEX21 (amino acids 73–636) was c ea ed by a h ee-way liga ion o a HindIIIy HincII agmen o p73 wi h a HincIIySphI agmen o REEX1 be ween he HindIII and SphI si es o pcDNAI-Amp. REEX21 ex ends p73 by 91 amino acids. REEX7, con aining an in e nal dele ion be ween amino acids 636 and 786, was cons uc ed by a h ee-way liga ion o an EcoRIyblun ed SphI agmen o REEX1 wi h a blun ed Bs XIyXbaI agmen o REEX1 inse ed be ween he EcoRI and XbaI si es o pc DNAI-Amp. REEX9 (amino acids 1–1036) was gene a ed by liga ion o an EcoRIySphI agmen o REEX1 and a SphIy EaeI agmen o REEX1 be ween he EcoRI and No I si es o pcDNAI-Amp. REEX8 (amino acids 73–1097) was c ea ed by subcloning a P uIIyXbaI agmen o REEX1 be ween he EcoRV and XbaI si es o pcDNAI-Amp. The o ien a ion o all ecombinan REST cons uc s was con i med by es ic ion analysis, and REST dele ional mu an s we e also checked by sequence analysis o ensu e ha ameshi s had no occu ed. The plasmid pSG424 con aining he GAL4 DNA-binding domain (amino acids 1–147) was ob ained om S an Fields (Uni e si y o Washing on, Sea le). To cons uc GAL4-N1, he amino- e minal sequences o REST (amino acids 1–83) we e ob ained by he polyme ase chain eac ion (PCR) using REEX1 as he empla e. The PCR p oduc s we e diges ed wi h BamHI and KpnI es ic ion enzymes and subcloned in o he pSG424 ec o . GAL4-REEX1 was gene a ed by h ee-way liga ion o a BamHIyP uII agmen o GAL4-N1 wi h a P uIIyXbaI agmen o REEX1 be ween he BamHI and XbaI si es o pSG424. GAL4-p73 (amino acids 62–545 o REST) was gene a ed by i s liga ing a P uIIyXbaI agmen o GAL4-REEX1 be ween he SmaI and XbaI si es o pSG424, gene a ing GAL4-REEX8. Second, a ClaIyXbaI agmen o p73 was liga ed be ween he ClaIyXbaI si es o GAL4- REEX8, esul ing in GAL4-p73. To cons uc GAL4-C3, REST amino acids om 1008 o 1097, con aining he single zinc inge , we e ampli ied by he PCR and he agmen was subcloned in o he pSG424 backbone a he BamHI si e. All o he GAL4-REST usions we e sequenced ac oss he GAL4- REST junc ion o ensu e ha he inse s we e in ame wi h GAL4. All cons uc s gene a ed by he PCR we e ully se- quenced o ensu e ha mu a ionsydele ions had occu ed du ing he ampli ica ion eac ion. The RE1-con aining ype II sodium channel-chlo amphen- icol ace yl ans e ase (CAT) epo e gene, pSDK7, has been desc ibed p e iously (7). The ups eam ac i a ing sequence (UAS) ype II CAT epo e gene was gene a ed by subs i u - ing he 23-nucleo ide ype II RE1 sequence in he CAT epo e plasmid o i e copies o he UAS om he plasmid pGAL4-TKCAT p o ided by Thomas Shenk, P ince on Uni- e si y (18). Si e-Di ec ed Mu agenesis. To gene a e a mu an REST molecule wi h an amino acid change in he p edic ed ca boxyl- e minal zinc inge mo i , a comme cial DNA mu agenesis ki was used (Mo ph, 5 P ime 33 P ime). An oligonucleo ide encoding a mu a ion in a cys eine esidue o he zinc inge was syn hesized. This oligonucleo ide, 59-GCGGCTAAGG- GAGATTTTGTTCGTATCTTCTGTGATCG-39, was used o cons uc he mu an GAL4-C3M1. The agmen was checked by sequence analysis. (The bold ace le e ep esen s he change om wild- ype sequence.) The mu a ion esul s in he subs i u ion o an a ginine esidue o a cys eine. To gene a e an in ac REST molecule con aining he mu a ion in he ca boxyl- e minal zinc inge , an EcoRIyEagI agmen o REEX1 and an EaeIyXbaI agmen o GAL4-C3M1 we e liga ed in o he pcDNA1-Amp ec o a he EcoRI and XbaI si es. T ansien T ans ec ions and CAT Assays. PC12 cells we e g own as desc ibed p e iously (19). COS-1 cells we e g own in Dulbecco’s modi ied Eagle’s Medium (DMEM) supplemen ed wi h 10% bo ine cal se um (HyClone). COS-1 cells we e ans ec ed wi h 8 m g o plasmid DNA by ea men wi h calcium phospha e (20). Fo he ans ec ions shown in Fig. 1, PC12 cells we e elec opo a ed wi h mix u es o 10 m go epo e plasmid con aining ei he 5 m g o emp y pcDNAI- Amp ec o o 10 m g o pcDNAI-Amp plasmids con aining REST cDNA inse s. Fo he ans ec ions shown in Fig. 2, PC12 cells we e elec opo a ed wi h mix u es o 10 m go epo e plasmid and 5 m g o pSG424 o equimola ( o 5 m go pSG424) amoun s o GAL4-REST usion cDNA cons uc s. To all mix u es, pBluesc ip II SK (S a agene) was added o b ing he inal amoun o DNA o 20 m g. Fo he ans ec ions shown in Fig. 3, 10 m g o epo e plasmid was mixed wi h ei he 1 m g o pcDNAI-Amp o an equimola amoun o pcDNAI-Amp con aining REST inse s. The mix u e o cells and DNA was chilled on ice o 5–10 min be o e elec opo- a ion (250 mV, 960 mF). Following elec opo a ion he cells we e chilled on ice o a u he 10 min be o e pla ing in 100-mm dishes. Medium was changed 24 h a e ans ec ion and cells we e ha es ed a e 48 h . The p o ein concen a ion o he cell lysa es was de e mined wi h he mic o BCA p o ein assay eagen (Pie ce) in mic o i e pla es. Assays o CAT ac i i y in lysa es o he ha es ed cells we e pe o med as desc ibed p e iously (7). Rela i e ac i i y o he ex ac s was calcula ed by de e mining he pe cen age o ace yla ed chlo - amphenicol, using a Molecula Dynamics Phospho Image . Fo each cons uc a leas wo di e en p epa a ions o plasmid DNA we e used (Qiagen om Qiagen o Je S a om Genomed). In each expe imen , cons uc s we e ans ec ed in duplica e and di e en expe imen s we e pe o med se e al imes as no ed in Resul s. Wes e n Blo Analyses. Nuclea ex ac p epa a ion and Wes e n blo ing o COS-1 cells ans ec ed wi h he app o- p ia e cDNA cons uc s we e pe o med as desc ibed p e i- ously (16), and he samples we e solubilized in Laemmli sample bu e . A e sepa a ion on educing SDSypolyac yl- amide gels, ei he 7% o 12% polyac ylamide, p o eins we e ans e ed on o ni ocellulose memb anes. Blo s we e incu- ba ed ei he wi h a polyclonal an i-GAL4 an ibody (Ups a e Bio echnology) o an a ini y-pu i ied polyclonal an i-REST an ibody. The an ibodies we e isualized by using he ECL de ec ion me hod (NEN). RESULTS Two Dis inc Domains in REST A e In ol ed in Rep ession o Type II Sodium Channel Repo e Genes in PC12 Cells. Al hough no known ep esso consensus sequences we e ap- pa en in he deduced p ima y sequence o REST, h ee dis inc domains, depic ed in Fig. 1, we e iden i ied. These domains, om amino e minus o ca boxyl e minus, consis ed o he ollowing: (i) a clus e o eigh GLI-K u¨ppel ype zinc inge s cons i u ing he DNA-binding domain (16, 17), (ii)a no el ei e a ed p oline- ich mo i , and (iii) a single C 2 H 2 zinc inge mo i in he ca boxyl e minus. He e, we ha e gene a ed a amily o dele ion molecules o examine he po en ial in- ol emen o hese mo i s in ansc ip ional ep ession by REST. The REST cDNAs we e placed unde con ol o he 1178 Biochemis y: Tapia-Ramı´ ez e al. P oc. Na l. Acad. Sci. USA 94 (1997) CMV 1E p omo e in he mammalian exp ession ec o pcDNA1 (Fig. 1). The cons uc s we e co ans ec ed in o PC12 cells, which do no exp ess signi ican le els o he endogenous REST gene, along wi h CAT epo e genes con aining he ype II sodium channel RE1 sequence ups eam o he ype II p omo e . CAT ac i i y esul ing om co ans ec ion o he ype II epo e gene and he emp y ec o was se o 100%. Co ans ec ion o PC12 cells wi h he ype II sodium channel epo e gene and he ull-leng h REST cDNA (REEX1) caused a g ea e han 7- old ep ession o epo e gene exp ession (13.3% CAT ac i i y; Fig. 1). Because he domain con aining he clus e o eigh zinc inge s is equi ed o DNA binding o he RE1 sequence (16) his domain mus be included in all o he REST dele ional mu an s. As expec ed, exp ession o he REST DNA-binding domain alone (p73) did no esul in ep ession o he ype II epo e gene. In ac , CAT ac i i y o his mu an was sligh ly g ea e han ha o he con ol alue, pe haps ep esen ing a sligh dominan in e - e ing e ec om compe i ion o RE1 binding by he low le els o REST p o ein ha a e p esen in PC12 cells ( e . 16; see also esul s wi h GAL4-p73 in Fig. 2B). Inclusion o a egion adjacen o he DNA-binding domain caused only a modes inc ease in ep esso ac i i y (75% CAT ac i i y; Fig. 1). The domain con aining he six ei e a ed p oline- ich mo i s was also dele ed om he in ac REST molecule (REEX7). The emo al o his domain did no in e e e wi h ep esso ac i i y (Fig. 1), indica ing ha hese mo i s a e no equi ed o he ep esso mechanism. Exp ession o a unca ed REST molecule lacking he 60 e minal amino acids o REST ha includes he lone zinc inge mo i (REEX9) esul ed in a pa ial de ep ession o he ype II p omo e , causing an app oxima ely 3- old inc ease in CAT ac i i y compa ed wi h ha media ed by he wild- ype REEX1 molecule. Thus, o all o he ob ious domains e ealed by elucida ion o he REST p ima y sequence, only he ca boxyl- e minal zinc inge domain exhibi ed signi ican ep esso ac i i y. Howe e , he equi emen o his domain was only pa ial, sugges ing ha o he domains in REST we e also equi ed o media e ep ession. In suppo o his in e - p e a ion, a pa ial cDNA ex ending om he p edic ed ini- ia o me hionine in NRSF o amino acid 585 also exhibi ed ep esso ac i i y in ansien ans ec ion analyses (17). By p ocess o elimina ion in compa ing he p edic ed s uc u es o he pa ial NRSF p o ein and ull-leng h RESTyNRSF, an- o he candida e o a ep esso domain was he amino e mi- nus o REST ha was missing in he DNA-binding domain cons uc , p73. Resul s o ans ec ions wi h a REST mu an ha lacks hese amino acids (REEX8) showed ha he amino- e minal domain was pa ially equi ed o ep ession o ype II sodium channel epo e gene exp ession (37.3% CAT ac i i y; Fig. 1). The amoun o ep ession exhibi ed by he REST mu an s dele ed in he amino- and ca boxyl- e minal domains we e oughly equi alen (app oxima ely 3- old e- p ession o epo e gene ac i i y o each cons uc ). To de e mine whe he he amino- and ca boxyl- e minal domains we e su icien o media e ep ession, ep esso ac- i i y o he indi idual domains was es ed by using hem in- ame o cDNA coding o he DNA-binding domain o he yeas ac i a o p o ein GAL4. Co espondingly, in he ype II sodium channel epo e gene, he ype II RE1 was eplaced wi h i e copies o he yeas UAS, he a ge si e o binding by he GAL4 p o ein. The chime ic cDNAs and UAS epo e genes we e hen co ans ec ed in o PC12 cells. The ac i i y o he UAS ype II epo e gene coexp essed wi h he GAL4 DNA-binding domain alone was se a 100%. To alida e his sys em o analyzing REST ep esso ac i - i y, a chime ic p o ein con aining he ull-leng h REST p o ein (GAL4-REEX1; Fig. 2A) was i s in oduced in o PC12 cells along wi h he UAS epo e gene. As expec ed, CAT ac i i y o GAL4-REEX1 was ep essed app oxima ely 4- old com- pa ed wi h con ol CAT ac i i y (Fig. 2B). To de e mine whe he he 83 amino- e minal (GAL4N1; Fig. 2A) o 88 ca boxyl- e minal (GAL4C3; Fig. 2A) amino acids we e su - icien o media e ep ession in his sys em, hese domains we e also used in- ame wi h he GAL4 DNA-binding domain. Exp ession o hese REST domains esul ed in d ama ic ep esso ac i i y, 9.5- old and 11- old, espec i ely (Fig. 2B), indica ing ha hey we e indeed su icien o media e ep es- sion o UAS epo e gene exp ession. In con as o hese esul s, ans ec ions wi h he GAL4-p73 usion gene (Fig. 2A), encoding he eigh K u¨ppel ype zinc inge s in he DNA-binding domain, did no esul in ep ession o epo e gene ac i i y (Fig. 2B). Mu a ion o he Single Zinc Finge in he Ca boxyl- Te minal Domain Ab oga es Rep ession. Unlike he amino- e minal domain, he ca boxyl- e minal domain ha was su - icien o ep ess he ype II sodium channel p omo e con- ained a ecognizable mo i , a single C 2 H 2 zinc inge . To es FIG. 1. Domains in he amino and ca boxyl e mini o REST a e equi ed, in pa , o media e ep ession o ype II sodium channel epo e genes. The amily o REST molecules exp essed unde con ol o he cy omegalo i us (CMV) p omo e , in PC12 cells, is shown wi h espec o he p esence o known mo i s in he deduced p ima y s uc u e o REST ( op line). The do ed lines indica e he egions in REST ha we e dele ed. A ca oon o he co ans ec ed epo e gene shows he posi ions o he ype II ep esso elemen 1 (RE1), ype II sodium channel p omo e ( ype II) and CAT gene (bo om line). A ows indica e he s a si es o ansc ip ion in he exp ession plasmids. On he igh , he pe cen ac i i y o CAT esul ing om ans ec ion o he di e en cons uc s is no malized o ha om he ec o alone, which is se o 100%. S anda d e o s o he mean and (in pa en heses) he numbe s o expe imen s a e indica ed. Biochemis y: Tapia-Ramı´ ez e al. P oc. Na l. Acad. Sci. USA 94 (1997) 1179 whe he his mo i was equi ed o ep ession by REST, one o he cys eine esidues c i ical o he zinc inge s uc u e was changed o an a ginine, and he mu a ed domain was used in- ame wi h he GAL4-DNA-binding domain. The mu a ed cons uc (GAL4C3M1) was co ans ec ed in o PC12 cells along wi h he UAS ype II epo e gene (Fig. 2B). The zinc inge mu a ion abolished he ep esso ac i i y no mally obse ed wi h he co esponding wild- ype REST domain ( he CAT ac i i y was equi alen o ha seen by exp ession o he con ol GAL4 and GAL4-p73 cons uc s). Wes e n blo anal- ysis o COS-1 cells ans ec ed wi h he GAL4 usion genes indica ed ha he lack o ep ession by he mu a ed ca boxyl- e minal zinc inge domain (GAL4-C3M1) and by he REST p73 domain was no due simply o di e ences in he le els o exp essed chime ic p o eins (Fig. 2C). Rep ession o epo e gene ac i i y media ed by he GAL4-REST usion p o eins equi ed he REST domains o be e he ed o he DNA h ough he GAL4 DNA-binding domain because ans ec- ions o he GAL4-REST cons uc s wi h a ype II epo e gene lacking an UAS did no esul in ep ession o CAT ac i i y (da a no shown). The abo e s udies indica ed ha he single zinc inge mo i was equi ed o ep ession media ed by he ca boxyl- e minal REST domain. To de e mine whe he he zinc inge mo i was also equi ed o ep ession wi hin he con ex o he in ac REST molecule, he cys eine- o-a ginine poin mu a ion was in oduced in o he ull-leng h REST molecule REEX1 and co ans ec ed wi h he RE1- ype II sodium channel epo e gene in o PC12 cells (Fig. 3). The poin mu a ion in REEX1 (REEX1M1) esul ed in a pa ial de ep ession o he ype II p omo e (4.5- old inc ease in CAT ac i i y compa ed wi h wild- ype REEX1; Fig. 3B). The esidual ep esso ac i i y is likely due o he p esence o he amino- e minal agmen shown abo e o be su icien o pa ially media e ep ession. T ans ec ion o he wild- ype and mu an cDNAs in o COS-1 cells esul ed in he exp ession o a 200-kDa p o ein ha was de ec ed by an an i-REST an ibody (Fig. 3C). The educed ep esso ac i i y o mu a ed REST was no due o educed accumula ion o he p o ein, because Wes e n blo analysis indica ed simila le els o exp ession o he wild- ype and mu an p o eins (Fig. 3C). DISCUSSION The molecula mechanisms esponsible o egula ing exp es- sion o genes in he ne ous sys em a e unde s ood poo ly. FIG. 2. Domains in he amino and ca boxyl e mini o REST a e su icien o media e ep ession, and a poin mu a ion in he zinc inge mo i ab oga es ep esso ac i i y. (A) Schema ic ep esen a ion o he amily o GAL4-REST chime ical cDNAs exp essed wi h a UAS ype II-CAT epo e gene in ansien ans ec ions o PC12 cells. The epo e gene con ains i e copies o he UAS. The do ed lines indica e egions in REST ha we e dele ed. A ows indica e s a si es o ansc ip ion. The ca boxyl- e minal (C3), amino- e minal (N1), and mu a ed ca boxyl- e minal (C3M1) agmen s o REST a e in- ame wi h he DNA-binding domain o he GAL4 p o ein. (B)(Le ) Rep esen a i e au o adiog am showing hin-laye ch oma og aphy (TLC) ac iona ion o ace yla ed o ms o chlo amphenicol. Each sample is om a dish o cells ans ec ed ansien ly wi h he GAL4-REST chime ical cDNA and he UAS ype II epo e gene. No e ha he CAT assay wi h he GAL4-p73 cons uc was om a di e en TLC pla e. (Righ ) His og am showing compiled da a om independen expe imen s. S anda d e o s o he mean and he numbe s o expe imen s a e indica ed. (C) Wes e n blo analysis o COS-1 cells ans ec ed wi h he indica ed GAL4-REST ca boxyl- e minal (C3 and C3M1) and GAL4-p73 cons uc s. The amoun s o he exp essed p o eins (a owheads) show ha he inabili y o he mu a ed ca boxyl- e minal agmen C3M1 and p73 o ep ess is no due o ins abili y o he exp essed p o ein. 1180 Biochemis y: Tapia-Ramı´ ez e al. P oc. Na l. Acad. Sci. USA 94 (1997) Howe e , ecen s udies ha e shown ha a leas one o hese mechanisms in ol es ansc ip ional ep ession media ed by he DNA-binding p o ein REST. The disco e y ha REST is also in ol ed in egula ing he exp ession o many o he genes exp essed in he ne ous sys em, h ough a common RE1-like gene ic elemen , unde sco es he impo ance o elucida ing he molecula mechanism by which REST ep ession is me- dia ed. Euka yo ic ansc ip ion can be p e en ed by mechanisms ha a e dependen upon (silencing) o independen o ( e- p ession) ch oma in s uc u e ( o e iew see e . 21). The obse a ion ha REST can inhibi epo e gene exp ession in ansien ans ec ion analyses wi h plasmid DNA sugges s ha ch oma in emodeling is no equi ed o i s abili y o block ansc ip ion, and classi ies REST as a ep esso . Two well cha ac e ized domains ha e been shown o media e he ac i - i ies o o he ep esso p o eins, a domain ha is ich in alanine esidues (22–24), and a K u¨ppel-associa ed box A (KRAB-A) domain, ich in cha ged amino acids, ha is p esen in a la ge numbe o zinc inge p o eins (25, 26). The deduced p ima y s uc u e o ull-leng h REST ( e s. 16 and 27, and D. Ande - son, pe sonal communica ion) does no con ain ei he o hese mo i s. The clus e o eigh GL1- K u¨ppel ype zinc inge s in REST binds o he ype II RE1 sequence in i o and in i o (16, 17). Despi e he abili y o bind DNA, hey a e no su icien o media e ep ession. An addi ional C 2 H 2 zinc inge mo i esides in he deduced ca boxyl e minus o REST. The dele ional and GAL4 usion gene analyses pe o med in his s udy indica ed ha , unlike he DNA-binding domain, his domain was pa ially equi ed and su icien o media e e- p ession o ype II sodium channel epo e genes. In ac , he amoun o ep ession media ed by he GAL4-ca boxyl- e minal usion p o ein was e en g ea e han ha media ed by ep ession o he GAL4-REST chime a con aining he en i e REST sequence. I is possible ha he zinc inge mo i in he isola ed ca boxyl- e minal domain is mo e accessible o o he componen s in ol ed in he ep ession mechanism han when embedded in he in ac REST molecule. To exclude he possibili y ha all small agmen s used o GAL4 will media e ep ession in his sys em, we examined wo addi ional REST agmen s o a size simila o ha o he ca boxyl- e minal domain. The small GAL4-REST usion p o eins do no exhibi ep esso ac i i y (da a no shown). Fu he mo e, he ca box- yl- e minal domain con aining a single poin mu a ion in he zinc inge mo i also does no exhibi ep esso ac i i y. Zinc inge mo i s in p o eins a e usually associa ed wi h DNA binding ( o e iew see e . 28). The zinc inge s can also media e p o ein–p o ein in e ac ions (29–34), and some o he p o eins ha con ain zinc inge mo i s a e ansc ip ional ep esso s. Howe e , o ou knowledge, REST is he i s example whe eby a zinc inge s uc u e is equi ed o media e ep ession. Fo example, in he ansc ip ion ac o YY1, al hough an iden i ied ep esso domain con ained wo zinc inge s, mu a ional analysis indica ed ha he s uc u es o hese zinc inge s we e no equi ed o ep ession (35). I may be ha he zinc inge mo i in REST is su icien o media e ep ession, al hough lanking amino acid sequences may also con ibu e o he abili y o he minimal 23 amino acid mo i o ep ess. In e es ingly, in he ansc ip ion ac o TFIIIA, he linke sequence cha ac e is ic o K u¨ppel ype zinc inge s has been shown o con e high-a ini y DNA binding on he zinc inge domain (36). This linke sequence is p esen in he K u¨ppel ype zinc inge s ha cons i u e he DNA-binding domain in REST. The zinc inge mo i in he ca boxyl- e minal domain o REST ha media es ep ession, as a single s uc u e, does no ha e his linke sequence and does no appea o bind DNA. Fo example, in ansien ans ec ion analysis, chime ic GAL4 p o eins con aining he ca boxyl- e minal domain o REST, and hus he zinc inge , do no ep ess ype II sodium channel epo e genes con aining he RE1 sequence in place o he UAS (J.T.-R. and G.M., unpublished esul s). Al hough we canno o mally exclude he possibili y ha his zinc inge mo i binds o DNA (bu see e . 27), i does no appea o bind o he ype II RE1 sequence. The dele ional and usion gene s udies he ein ha e e ealed he p esence o wo dis inc ep esso domains loca ed a opposi e ends o he REST molecule. Indeed, he REST amino- e minal domain used o GAL4 is as e ec i e in media ing ep ession o he ype II p omo e as is he ca boxyl- e minal domain. Fu he , like he zinc inge domain, he amino- e minal domain is also pa ially equi ed o ep es- FIG. 3. The single C 2 H 2 zinc inge in he ca boxyl e minus o REST is su icien o media e ep ession o ype II sodium channel epo e genes. (A) Schema ic ep esen a ion o he REST exp ession ec o and ype II-CAT epo e genes. Rela i e loca ions o dis inc domains in REST a e indica ed. (B) Rep esen a i e au o adiog am (Le ) shows TLC ac iona ion o ace yla ed o ms o chlo amphenicol om PC12 cells co ans ec ed wi h he di e en REST cons uc s shown and he RE1- ype II-CAT epo e gene. O he symbols a e he same as in Fig. 1. A his og am (Righ ) shows a compila ion o CAT ac i i y om ou independen expe imen s using he REST cons uc s indica ed o he au o adiog am. S anda d e o s o he mean a e shown. (C) Wes e n blo analysis o COS cells ans ec ed wi h he wild- ype (REEX1) and mu a ed (REEX1M1) cDNAs. Uppe a owhead deno es o e exp essed REST p o ein (200 kDa) and lowe a owhead deno es c oss- eac ing endogenous p o ein mig a ing a 116 kDa (16). Biochemis y: Tapia-Ramı´ ez e al. P oc. Na l. Acad. Sci. USA 94 (1997) 1181 sion. No ob ious mo i s a e p esen wi hin he amino- e minal sequences. Howe e , u u e s udies, such as compa isons wi h REST homologues in o he species, may help cla i y he unc ional mo i s. Many ep esso complexes consis o a DNA-binding p o ein in e ac ing wi h co ep esso s. Examples o such complexes a e hy oid ho mone and e inoic acid ecep o s and he TRACs (37, 38), MadyMaxysin3 (39), yeas TUP1ySSN6 and se e al di e en DNA-binding p o eins (e.g., see e . 40), he imme- dia e ea ly p o eins NAB1yNGF1AyKROX20 (41), and D o- sophila Hai y- ela ed p o eins and G oucho (42, 43). I is likely ha he amino- e minal and zinc inge domains now iden i- ied in REST in e ac wi h co ep esso p o eins o wi h p o eins ha a e pa o he ini ia ion complex. We acknowledge g a e ully he con ibu ions o Julia G imes in all aspec s o p epa a ion o he manusc ip and Simon Halegoua and Paul B ehm o c i ical and help ul discussions. We also hank Da id Kennedy o excellen echnical expe ise and D . Co inna Be ge o he an i-REST an ibody. This wo k was suppo ed by Na ional Ins i- u es o Heal h G an NS22518 o G.M. and by ellowships om he Na ional Mul iple Scle osis Socie y, he Human F on ie Science P og am, and he Spanish Go e nmen o J.J.T.-A., B.J.L.E., and M.J.P.-R., espec i ely. 1. Mandel, G. (1992) J. Memb. Biol. 125, 193–205. 2. Noda, M., Ikeda, T., Suzuki, H., Takeshima, H., Takahashi, T., Kuno, M. & Numa, S. (1986) Na u e (London) 322, 826–828. 3. Auld, V. J., Goldin, A. L., K a e, D. S., Ma shall, J., Dunn, J. M. Ca e all., W. A., Les e , H. A., Da idson, N. & Dunn, R. J. (1988) Neu on 1, 449–461. 4. Beckh, S., Noda, M., Lubbe , H. & Numa, S. (1989) EMBO J. 8, 3611–3616. 5. Wes enb oek, R. E., Me ick, D. K. & Ca e all, W. A. (1989) Neu on 3, 695–704. 6. Maue, R. A., K ane , S. D., Goodman, R. H. & Mandel, G. (1990) Neu on 4, 223–231. 7. K ane , S. D., Chong, J. A., Tsay, H.-H. & Mandel, G. (1992) Neu on 9, 37–44. 8. Schoenhe , C. J., Paque e, A. J. & Ande son, D. J. (1996) P oc. Na l. Acad. Sci. USA 93, 9881–9886. 9. Mo i,N.,S ein,R.,Sigmund,O.&Ande son,D. J.(1990)Neu on 4, 588–594. 10. Mo i, N., Schoenhe , C., Vandenbe gh, D. J. & Ande son, D. J. (1992) Neu on 9, 45–54. 11. Thiel, G., G eenga d, P. & Su¨dho , T. C. (1991) P oc. Na l. Acad. Sci. USA 88, 3431–3435. 12. Bessis, A., Salmon, A.-M., Zoli, M., LeNo e e, N., Piccio o, M. & Changeux, J.-P. (1995) J. Neu osci. 69, 807–819. 13. Mieda, M., Haga, T. & Sa en, D. W. (1996) J. Biol. Chem. 271, 5177–5182. 14. Wood, I. C., Roop a, A. & Buckley, N. J. (1996) J. Biol. Chem. 271, 14221–14225. 15. Kallunki, P., Jenkinson, S., Edelman, G. M. & Jones, F. S. (1995) J. Biol. Chem. 270, 21291–21298. 16. Chong, J. A., Tapia-Ramı´ ez, J., Kim, S., Toledo-A al, J. J., Zheng, Y., Bou os, M. C., Al shulle , Y. M., F ohman, M. A., K ane , S. D. & Mandel, G. (1995) Cell 80, 949–957. 17. Schoenhe , C. J. & Ande sen, D. J. (1995) Science 267, 1360– 1363. 18. Shi, Y., Se o, E., Chang, L.-S. & Shenk, T. (1991) Cell 67, 377–388. 19. Toledo-A al, J., B ehm, P., Halegoua, S. & Mandel, G. (1995) Neu on 14, 607–611. 20. Wigle , M., Pellice , A., Sil e s ein, S., Axel, R., U laub, G. & Chasin, L. (1979) P oc. Na l. Acad. Sci. USA 76, 1373–1376. 21. Johnson, A. D. (1995) Cell 81, 655–658. 22. Lich , J. D., G ossel, J., Figge, J. & Hansen, U. M. (1990) Na u e (London) 346, 76–79. 23. Jaynes, J. B. & O’Fa ell, P. H. (1991) EMBO J. 10, 1427–1433. 24. Han, K. & Manley, J. L. (1993) EMBO J. 12, 2723–2733. 25. Wi zgall, R., O’Lea y, E., Lea , A., O ¨naldi, D. & Bon en e, J. V. (1994) P oc. Na l. Acad. Sci. USA 91, 4514–4518. 26. Ma golin, J. F., F iedman, J. R., Meye , W. K.-H., Vissing, H., Thiesen, H.-J. & Rausche , F. J., III (1994) P oc. Na l. Acad. Sci. USA 91, 4509–4513. 27. Scholl, T., S e ens, M. B., Manhan a, S. & S ominge , J. L. (1996) J. Immunol. 156, 1448–1457. 28. Klug, A. & Schwabe, W. R. (1995) FASEB J. 9, 597–658. 29. Ha, I., Robe s, S., Maldonado, E., Sun, X., Kim, L.-U., G een, M. & Reinbe g, D. (1993) Genes De . 7, 1021–1032. 30. Lee, J.-S., Gal in, K. M. & Shi, Y. (1993) P oc. Na l. Acad. Sci. USA 90, 6145–6149. 31. Se o, E., Lewis, B. & Shenk, T. (1993) Na u e (London) 365, 462–464. 32. Geisbe g, J. V., Lee, W. S., Be k, A. J. & Riccia di, R. P. (1994) P oc. Na l. Acad. Sci. USA 91, 2488–2492. 33. Zhou, Q., Ged ich, R. W. & Engel, D. A. (1995) J. Vi ol. 69, 4323–4330. 34. Me ika, M. & O kin, S. H. (1995) Mol. Cell. Biol. 15, 2437–2447. 35. Bushmeye , S., Pa k, K. & A chison, M. L. (1995) J. Biol. Chem. 270, 30213–30220. 36. Choo, Y. & Klug, A. (1993) Nucleic Acids Res. 21, 3334–3346. 37. Chen, J. D. & E ans, R. M. (1995) Na u e (London) 377, 454– 457. 38. Ho¨ lein, A. J., Na¨a¨ , A. M., Heinzel, T., To chia, J., Gloss, B., Ku okawa, R., Ryan, A., Kamei, Y., So¨de s o¨m, M., Glass, C. K. & Rosen eld, M. G. (1995) Na u e (London) 377, 397–403. 39. Aye , D. E., Law ence, Q. A. & Eisenman, R. N. (1995) Cell 80, 767–776. 40. Kelehe , C. A., Redd, M. J., Schul z, J., Ca lson, M. & Johnson, A. D. (1992) Cell 68, 709–719. 41. Russo, M. W., Se e son, B. R. & Milb and , J. (1995) P oc. Na l. Acad. Sci. USA 92, 6873–6877. 42. Pa oush, Z., Finley, R. L., J ., Kidd, T., Wainw igh , S. M., Ingham, P. W., B en , R. & Ish-Ho owicz, D. (1994) Cell 79, 805–815. 43. Fishe , A. L., Ohsako, S. & Caudy, M. (1996) Mol. Cell. Biol. 16, 2670–2677. 1182 Biochemis y: Tapia-Ramı´ ez e al. P oc. Na l. Acad. Sci. USA 94 (1997)