a genome-wide analysis reveals no nuclear dobzhansky-muller pairs of determinants of speciation between s. cerevisiae and s. paradoxus, but suggests more complex incompatibilities全基因组分析显示没有核dobzhansky-muller对酵母和s脉之间的物种形成的决定因素,但建议更复杂的不兼容性.pdfVIP

a genome-wide analysis reveals no nuclear dobzhansky-muller pairs of determinants of speciation between s. cerevisiae and s. paradoxus, but suggests more complex incompatibilities全基因组分析显示没有核dobzhansky-muller对酵母和s脉之间的物种形成的决定因素,但建议更复杂的不兼容性.pdf

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a genome-wide analysis reveals no nuclear dobzhansky-muller pairs of determinants of speciation between s. cerevisiae and s. paradoxus, but suggests more complex incompatibilities全基因组分析显示没有核dobzhansky-muller对酵母和s脉之间的物种形成的决定因素,但建议更复杂的不兼容性

A Genome-Wide Analysis Reveals No Nuclear Dobzhansky-Muller Pairs of Determinants of Speciation between S. cerevisiae and S. paradoxus, but Suggests More Complex Incompatibilities ¤ Katy C. Kao , Katja Schwartz, Gavin Sherlock* Department of Genetics, Stanford University, Stanford, California, United States of America Abstract The Dobzhansky-Muller (D-M) model of speciation by genic incompatibility is widely accepted as the primary cause of interspecific postzygotic isolation. Since the introduction of this model, there have been theoretical and experimental data supporting the existence of such incompatibilities. However, speciation genes have been largely elusive, with only a handful of candidate genes identified in a few organisms. The Saccharomyces sensu stricto yeasts, which have small genomes and can mate interspecifically to produce sterile hybrids, are thus an ideal model for studying postzygotic isolation. Among them, only a single D-M pair, comprising a mitochondrially targeted product of a nuclear gene and a mitochondrially encoded locus, has been found. Thus far, no D-M pair of nuclear genes has been identified between any sensu stricto yeasts. We report here the first detailed genome-wide analysis of rare meiotic products from an otherwise sterile hybrid and show that no classic D-M pairs of speciation genes exist between the nuclear genomes of the closely related yeasts S. cerevisiae and S. paradoxus. Instead, our analyses suggest that more complex interactions, likely involving multiple loci having weak effects, may be responsible for their post-zygotic separation. The lack of a nuclear encoded classic D-M pair between these two yeasts, yet the existence of multiple loci that may each exert a small effect through complex interactions suggests that initial speciation events might not al

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