The number of vertebrate repeats can be regulated at yeast telomeres by Rap1-independent mechanisms

被引:48
作者
Brevet, V
Berthiau, AS
Civitelli, L
Donini, P
Schramke, V
Géli, V
Ascenzioni, F
Gilson, E
机构
[1] Ecole Normale Super Lyon, CNRS, UMR5665, Mol Biol Lab, F-69364 Lyon 07, France
[2] Univ Roma La Sapienza, Dipartimento Biol Cellulare & Sviluppo, Ist Pasteur, Fdn Cenci Bolognetti, I-00185 Rome, Italy
[3] CNRS, Lab Ingn & Dynam Syst Macromol, F-13402 Marseille 20, France
关键词
evolution; TEL1; telomerase; telomere; yeast;
D O I
10.1093/emboj/cdg155
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 [生物化学与分子生物学]; 081704 [应用化学];
摘要
The number of telomeric DNA repeats at chromosome ends is maintained around a mean value by a dynamic balance between elongation and shortening. In particular, proteins binding along the duplex part of telomeric DNA set the number of repeats by progressively limiting telomere growth. The paradigm of this counting mechanism is the Rap1 protein in Saccharomyces cerevisiae. We demonstrate here that a Rap1-independent mechanism regulates the number of yeast telomeric repeats (TG(1-3)) and of vertebrate repeats (T(2)AG(3)) when TEL1, a yeast ortholog of the human gene encoding the ATM kinase, is inactivated. In addition, we show that a T(2)AG(3)-only telomere can be formed and maintained in humanized yeast cells carrying a template mutation of the gene encoding the telomerase RNA, which leads to the synthesis of vertebrate instead of yeast repeats. Genetic and biochemical evidences indicate that this telomere is regulated in a Rap1-independent manner, both in TEL1 and in tel1Delta humanized yeast cells. Altogether, these findings shed light on multiple repeat-counting mechanisms, which may share critical features between lower and higher eukaryotes.
引用
收藏
页码:1697 / 1706
页数:10
相关论文
共 55 条
[1]
Rap1p telomere association is not required for mitotic stability of a C3TA2 telomere in yeast [J].
Alexander, MK ;
Zakian, VA .
EMBO JOURNAL, 2003, 22 (07) :1688-1696
[2]
Targeting assay to study the cis functions of human telomeric proteins:: Evidence for inhibition of telomerase by TRF1 and for activation of telomere degradation by TRF2 [J].
Ancelin, K ;
Brunori, M ;
Bauwens, S ;
Koering, CE ;
Brun, C ;
Ricoul, M ;
Pommier, JP ;
Sabatier, L ;
Gilson, E .
MOLECULAR AND CELLULAR BIOLOGY, 2002, 22 (10) :3474-3487
[3]
TELOMERE DIRECTED FRAGMENTATION OF MAMMALIAN CHROMOSOMES [J].
BARNETT, MA ;
BUCKLE, VJ ;
EVANS, EP ;
PORTER, ACG ;
ROUT, D ;
SMITH, AG ;
BROWN, WRA .
NUCLEIC ACIDS RESEARCH, 1993, 21 (01) :27-36
[4]
Ku binds telomeric DNA in vitro [J].
Bianchi, A ;
de Lange, T .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1999, 274 (30) :21223-21227
[5]
Telomeric localization of TRF2, a novel human telobox protein [J].
Bilaud, T ;
Brun, C ;
Ancelin, K ;
Koering, CE ;
Laroche, T ;
Gilson, E .
NATURE GENETICS, 1997, 17 (02) :236-239
[6]
The telobox, a Myb-related telomeric DNA binding motif found in proteins from yeast, plants and human [J].
Bilaud, T ;
Koering, CE ;
BinetBrasselet, E ;
Ancelin, K ;
Pollice, A ;
Gasser, SM ;
Gilson, E .
NUCLEIC ACIDS RESEARCH, 1996, 24 (07) :1294-1303
[7]
The end of the (DNA) line [J].
Blackburn, EH .
NATURE STRUCTURAL BIOLOGY, 2000, 7 (10) :847-850
[8]
Switching and signaling at the telomere [J].
Blackburn, EH .
CELL, 2001, 106 (06) :661-673
[9]
Blackburn EH, 1995, TELOMERES
[10]
AN ESSENTIAL YEAST GENE ENCODING A TTAGGG REPEAT-BINDING PROTEIN [J].
BRIGATI, C ;
KURTZ, S ;
BALDERES, D ;
VIDALI, G ;
SHORE, D .
MOLECULAR AND CELLULAR BIOLOGY, 1993, 13 (02) :1306-1314