ArticleG3 (Bethesda, Md.)2024
Overview of the Saccharomyces cerevisiae population structure through the lens of 3,034 genomes.
Article in G3 (Bethesda, Md.), 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 39 papers.
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Who cites it
39 citing papers in PubMed.
- Article
- CYClones: a highly powered, fully genotyped, eight-parent yeast mapping population.G3 (Bethesda, Md.) · 2026Article
- Predictive models of the genetic bases underlying budding yeast fitness in multiple environments.NAR genomics and bioinformatics · 2026Article
- Gene-level complexity explains genome-wide variation in the distribution of fitness effects.Molecular biology and evolution · 2026Article
- The genetics of the many forms of diversity.Genetics · 2026Article
- Burst of aneuploidy: a cost of adaptation driven by breakdown of cell cycle control.Molecular systems biology · 2026Article
- Pervasive context-dependent effects in the genetic architecture of complex and quantitative traits revealed by a powerful multiparent mapping population in yeast.PLoS genetics · 2026Article
- One Yeast, Sixteen Synthetic Chromosomes, Infinite Possibilities.Yeast (Chichester, England) · 2026Review
- From Oak to Wine: Evolution, Admixture, and Adaptation of California and British Columbia Saccharomyces Cerevisiae Wine Strains.Genome biology and evolution · 2026Article
- Genotypic and Phenotypic Diversity of Maudiozyma humilis: The Multiple Evolutionary Trajectories of a Domesticated Yeast.Genome biology and evolution · 2026Article
- Comparative functional genomics ofMicrobiology spectrum · 2026Article
- Population-scale chemical response revealed by a barcoded yeast collection.Nature communications · 2026Article
- Combinatorial effects of multiple genes contribute to beneficial aneuploidy phenotypes.EMBO reports · 2026Article
- Distinctive domestication of farmhouse beer yeasts preserved pre-industrial genetic and phenotypic diversity.Current biology : CB · 2026Article
- Mapping adaptive immune responses toward fungal antigens in inflammatory bowel disease using T cell repertoire sequencing and phage-immunoprecipitation sequencing.Journal of Crohn's & colitis · 2026Article
- Genotype-fitness mapping of adaptive mutants reveals shifting low-dimensional structure across divergent environments.PLoS biology · 2026Article
- Influence of Ploidy and Genetic Background on Stress Tolerance of Intraspecific Yeast Hybrids.Microbial biotechnology · 2026Article
- Recurrent introgression and geographical stratification shape Saccharomyces cerevisiae in the Neotropics.Nature communications · 2026Article
- Evolutionary responses to increased opportunity for sexual selection in yeast.BMC ecology and evolution · 2026Article
- Domestication drives repeated evolution of sexual-asexual life cycle trade-offs in yeast.Proceedings of the National Academy of Sciences of the United States of America · 2026Article
Corrections and comments
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3 authors.
Funding
Abstract
With the rise of high-throughput sequencing technologies, a holistic view of genetic variation within populations-through population genomics studies-appears feasible, although it remains an ongoing effort. Genetic variation arises from a diverse range of evolutionary forces, with mutation and recombination being key drivers in shaping genomes. Studying genetic variation within a population represents a crucial first step in understanding the relationship between genotype and phenotype and the evolutionary history of species. In this context, the budding yeast Saccharomyces cerevisiae has been at the forefront of population genomic studies. In addition, it has a complex history that involves adaptation to a wide range of wild and human-related ecological niches. Although to date more than 3,000 diverse isolates have been sequenced, there is currently a lack of a resource bringing together sequencing data and associated metadata for all sequenced isolates. To perform a comprehensive analysis of the population structure of S. cerevisiae, we collected genome sequencing data from 3,034 natural isolates and processed the data uniformly. We determined ploidy levels, identified single nucleotide polymorphisms (SNPs), small insertion-deletions (InDels), copy number variations (CNVs), and aneuploidies across the population, creating a publicly accessible resource for the yeast research community. Interestingly, we showed that this population captures ∼93% of the species diversity. Using neighbor-joining and Bayesian methods, we redefined the populations, revealing clustering patterns primarily based on ecological origin. This work represents a valuable resource for the community and efforts have been made to make it evolvable and integrable to future yeast population studies.
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