Literature DB >> 23307895

Gene copy-number variation in haploid and diploid strains of the yeast Saccharomyces cerevisiae.

Hengshan Zhang1, Ane F B Zeidler, Wei Song, Christopher M Puccia, Ewa Malc, Patricia W Greenwell, Piotr A Mieczkowski, Thomas D Petes, Juan Lucas Argueso.   

Abstract

The increasing ability to sequence and compare multiple individual genomes within a species has highlighted the fact that copy-number variation (CNV) is a substantial and underappreciated source of genetic diversity. Chromosome-scale mutations occur at rates orders of magnitude higher than base substitutions, yet our understanding of the mechanisms leading to CNVs has been lagging. We examined CNV in a region of chromosome 5 (chr5) in haploid and diploid strains of Saccharomyces cerevisiae. We optimized a CNV detection assay based on a reporter cassette containing the SFA1 and CUP1 genes that confer gene dosage-dependent tolerance to formaldehyde and copper, respectively. This optimized reporter allowed the selection of low-order gene amplification events, going from one copy to two copies in haploids and from two to three copies in diploids. In haploid strains, most events involved tandem segmental duplications mediated by nonallelic homologous recombination between flanking direct repeats, primarily Ty1 elements. In diploids, most events involved the formation of a recurrent nonreciprocal translocation between a chr5 Ty1 element and another Ty1 repeat on chr13. In addition to amplification events, a subset of clones displaying elevated resistance to formaldehyde had point mutations within the SFA1 coding sequence. These mutations were all dominant and are proposed to result in hyperactive forms of the formaldehyde dehydrogenase enzyme.

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Year:  2013        PMID: 23307895      PMCID: PMC3583998          DOI: 10.1534/genetics.112.146522

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


  78 in total

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3.  Formaldehyde-induced genome instability is suppressed by an XPF-dependent pathway.

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  41 in total

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Review 4.  Guidelines for DNA recombination and repair studies: Cellular assays of DNA repair pathways.

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5.  Extrachromosomal circular DNA is common in yeast.

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6.  The Ty1 LTR-retrotransposon of budding yeast, Saccharomyces cerevisiae.

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7.  Haploid yeast cells undergo a reversible phenotypic switch associated with chromosome II copy number.

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8.  The sister chromatid cohesion pathway suppresses multiple chromosome gain and chromosome amplification.

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9.  Mutagenicity assessment downstream of oil and gas produced water discharges intended for agricultural beneficial reuse.

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10.  The genome-wide rate and spectrum of spontaneous mutations differ between haploid and diploid yeast.

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