Gene conversion tracts in Saccharomyces cerevisiae can be extremely short and highly directional

被引:36
作者
Palmer, S [1 ]
Schildkraut, E [1 ]
Lazarin, R [1 ]
Nguyen, J [1 ]
Nickoloff, JA [1 ]
机构
[1] Univ New Mexico, Sch Med, Dept Mol Genet & Microbiol, Albuquerque, NM 87131 USA
关键词
D O I
10.1093/nar/gkg219
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Gene conversion is a common outcome of double-strand break (DSB) repair in yeast. Prior studies revealed that DSB-induced gene conversion tracts are often short (<53 bp), unidirectional, and biased toward promoter-proximal (5') markers. In those studies, broken ends had short, non-homologous termini. For the present study we created plasmid x chromosome, chromosomal direct repeat and allelic recombination substrates in which donor alleles carried mutant HO sites (HOinc-not cleaved) at the same position as cleavable HO sites in recipient alleles. In these substrates, broken ends are almost completely homologous to donor alleles, differing only at the three HOinc mutations. These mutations serve as markers very close to, or within, the four-base overhang produced by HO nuclease. We identified extremely short tracts (<12 bp) and many tracts were highly directional, extending <2 bp on one side of the DSB. We thought that terminal homology would promote bidirectional tracts, but found instead that unidirectional tracts were more frequent. Interestingly, substrates with terminal homology displayed enhanced 3' conversion, and in several cases conversion bias was reversed toward 3' markers. These results are discussed in relation to factors that may influence tract length and directionality, including heteroduplex DNA formation, transcription, replication and mismatch repair.
引用
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页码:1164 / 1173
页数:10
相关论文
共 47 条
[1]   EFFECT OF LIMITED HOMOLOGY ON GENE CONVERSION IN A SACCHAROMYCES-CEREVISIAE PLASMID RECOMBINATION SYSTEM [J].
AHN, BY ;
DORNFELD, KJ ;
FAGRELIUS, TJ ;
LIVINGSTON, DM .
MOLECULAR AND CELLULAR BIOLOGY, 1988, 8 (06) :2442-2448
[2]   SPECIFIC CLEAVAGE OF MODEL RECOMBINATION AND REPAIR INTERMEDIATES BY THE YEAST RAD1-RAD10 DNA ENDONUCLEASE [J].
BARDWELL, AJ ;
BARDWELL, L ;
TOMKINSON, AE ;
FRIEDBERG, EC .
SCIENCE, 1994, 265 (5181) :2082-2085
[3]   Physical interaction between components of DNA mismatch repair and nucleotide excision repair [J].
Bertrand, P ;
Tishkoff, DX ;
Filosi, N ;
Dasgupta, R ;
Kolodner, RD .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (24) :14278-14283
[4]  
Chambers SR, 1996, MOL CELL BIOL, V16, P6110
[5]  
Cho JW, 1998, CURR GENET, V34, P269
[6]  
Clikeman JA, 2001, GENETICS, V157, P579
[7]  
Datta A, 1996, MOL CELL BIOL, V16, P1085
[8]   Dual roles for DNA sequence identity and the mismatch repair system in the regulation of mitotic crossing-over in yeast [J].
Datta, A ;
Hendrix, M ;
Lipsitch, M ;
JinksRobertson, S .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1997, 94 (18) :9757-9762
[9]   REMOVAL OF NONHOMOLOGOUS DNA ENDS IN DOUBLE-STRAND BREAK RECOMBINATION - THE ROLE OF THE YEAST ULTRAVIOLET REPAIR GENE RAD1 [J].
FISHMANLOBELL, J ;
HABER, JE .
SCIENCE, 1992, 258 (5081) :480-484
[10]   Transient stability of DNA ends allows nonhomologous end joining to precede homologous recombination [J].
Frank-Vaillant, M ;
Marcand, S .
MOLECULAR CELL, 2002, 10 (05) :1189-1199