Literature DB >> 8070656

Long-tract mitotic gene conversion in yeast: evidence for a triparental contribution during spontaneous recombination.

B D Bethke1, J Golin.   

Abstract

In Saccharomyces cerevisiae, spontaneous mitotic gene conversion at one site is statistically correlated with recombination at other loci. In general, coincident conversion frequencies are highest for tightly linked markers and decline as a function of intermarker distance. Paradoxically, a significant fraction of mitotic gene convertants exhibits concomitant nonreciprocal segregation for multiple and widely spaced markers. We have undertaken a detailed genetic analysis of this class of mitotic recombinants. Our results indicate that mitotic gene conversion in yeast is frequently associated with nonreciprocal segregation of markers centromere-distal to the selected site of conversion. In addition, distal markers are often found to be mosaic within the product colonies. These observations, and others described here, suggest that a percentage of gene conversion in vegetative yeast cells is coupled to a chromosome break and repair mechanism. This hypothesis was further tested using a strain trisomic for chromosome VII which was specially marked to detect homolog-dependent repair events. An association between mitotic gene conversion events and the production of broken chromosomes which are repaired by a homologous-pairing-copy mechanism was supported.

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Year:  1994        PMID: 8070656      PMCID: PMC1205968     

Source DB:  PubMed          Journal:  Genetics        ISSN: 0016-6731            Impact factor:   4.562


  24 in total

1.  The repair of double-strand breaks in DNA; a model involving recombination.

Authors:  M A Resnick
Journal:  J Theor Biol       Date:  1976-06       Impact factor: 2.691

2.  The behavior of insertions near a site of mitotic gene conversion in yeast.

Authors:  J E Golin; S C Falco
Journal:  Genetics       Date:  1988-07       Impact factor: 4.562

3.  Evidence of Chromosomal Breaks near the Mating-Type Locus of SACCHAROMYCES CEREVISIAE That Accompany MATalpha xMATalpha Matings.

Authors:  J H McCusker; J E Haber
Journal:  Genetics       Date:  1981-11       Impact factor: 4.562

4.  Coincident gene conversion during mitosis in saccharomyces.

Authors:  J E Golin; M S Esposito
Journal:  Genetics       Date:  1984-07       Impact factor: 4.562

5.  Healing of broken linear dicentric chromosomes in yeast.

Authors:  J E Haber; P C Thorburn
Journal:  Genetics       Date:  1984-02       Impact factor: 4.562

6.  Genetic properties of chromosomally integrated 2 mu plasmid DNA in yeast.

Authors:  S C Falco; Y Li; J R Broach; D Botstein
Journal:  Cell       Date:  1982-06       Impact factor: 41.582

7.  Measurement of restoration and conversion: its meaning for the mismatch repair hypothesis of conversion.

Authors:  P J Hastings
Journal:  Cold Spring Harb Symp Quant Biol       Date:  1984

8.  Rad52-independent mitotic gene conversion in Saccharomyces cerevisiae frequently results in chromosomal loss.

Authors:  J E Haber; M Hearn
Journal:  Genetics       Date:  1985-09       Impact factor: 4.562

9.  Mitotic recombination: mismatch correction and replicational resolution of Holliday structures formed at the two strand stage in Saccharomyces.

Authors:  J E Golin; M S Esposito
Journal:  Mol Gen Genet       Date:  1981

10.  Yeast recombination: the association between double-strand gap repair and crossing-over.

Authors:  T L Orr-Weaver; J W Szostak
Journal:  Proc Natl Acad Sci U S A       Date:  1983-07       Impact factor: 11.205

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  2 in total

1.  Double-strand break repair in the absence of RAD51 in yeast: a possible role for break-induced DNA replication.

Authors:  A Malkova; E L Ivanov; J E Haber
Journal:  Proc Natl Acad Sci U S A       Date:  1996-07-09       Impact factor: 11.205

2.  Intrachromosomal recombination between well-separated, homologous sequences in mammalian cells.

Authors:  M D Baker; L R Read; P Ng; B G Beatty
Journal:  Genetics       Date:  1999-06       Impact factor: 4.562

  2 in total

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