DUAL REQUIREMENT IN YEAST DNA MISMATCH REPAIR FOR MLH1 AND PMS1, 2 HOMOLOGS OF THE BACTERIAL MUTL GENE

被引:207
作者
PROLLA, TA
CHRISTIE, DM
LISKAY, RM
机构
[1] YALE UNIV,SCH MED,DEPT MOLEC BIOPHYS & BIOCHEM,NEW HAVEN,CT 06510
[2] YALE UNIV,SCH MED,DEPT THERAPEUT BIOL,NEW HAVEN,CT 06510
关键词
D O I
10.1128/MCB.14.1.407
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
We have identified a new Saccharomyces cerevisiae gene, MLH1 (mutL homolog), that encodes a predicted protein product with sequence similarity to DNA mismatch repair proteins of bacteria (MutL and HexB) and S. cerevisiae yeast (PMS1). Disruption of the MLH1 gene results in elevated spontaneous mutation rates during vegetative growth as measured by forward mutation to canavanine resistance and reversion of the hom3-10 allele. Additionally, the mlh1DELTA mutant displays a dramatic increase in the instability of simple sequence repeats, i.e., (GT)n (M. Strand, T. A. Prolla, R. M. Liskay, and T. D. Petes, Nature [London] 365:274-276, 1993). Meiotic studies indicate that disruption of the MLH1 gene in diploid strains causes increased spore lethality, presumably due to the accumulation of recessive lethal mutations, and increased postmeiotic segregation at each of four loci, the latter being indicative of inefficient repair of heteroduplex DNA generated during genetic recombination. mlh1DELTA mutants, which should represent the null phenotype, show the same mutator and meiotic phenotypes as isogenic pms1DELTA mutants. Interestingly, mutator and meiotic phenotypes of the mlh1DELTApms1DELTA double mutant are indistinguishable from those of the mlh1DELTA and pms1DELTA single mutants. On the basis of our data, we suggest that in contrast to Escherichia coli, there are two MutL/HexB-like proteins in S. cerevisiae and that each is a required component of the same DNA mismatch repair pathway.
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页码:407 / 415
页数:9
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