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Struass, S. K.

Publications and source records attributed to Struass, S. K..

2 recordsLinked to original sources

Adaptive Mate Selection in Saccharomyces cerevisiae Revealed Through a High-Throughput Mating Assay

In evolutionary biology, sexual mating plays a pivotal role in facilitating the combination of beneficial alleles among individuals. Cross-species data suggest that organisms selectively mate with partners based on factors such as genetic distance and partner fitness. Understanding the determinants of pair-specific mating affinity is crucial for unraveling the impact of sex on evolution. However, despite the significance of this phenomenon, the availability of large and consistent datasets is limited, leading to inconsistent conclusions. To address this gap, we present a comprehensive mating assay enabling the simultaneous quantification of mating affinity among approximately 100 natural Saccharomyces cerevisiae strains. Our study demonstrates that mating in an en masse manner, allowing mating based on affinity, enhances the overall fitness of the hybrids offspring population compared to mating that enforces one specific partner at a time. By employing a DNA barcode recombination system integrated into natural isolates genomes, we sequence recombined barcode pairs and revealed mating frequencies and affinities among all strains in different environments. Our findings unveil strain-specific mating affinity among natural yeast strains, with certain parental pairs exhibiting a heightened affinity for each other over other strains, whereas certain strains combinations are avoided. Notably, among the pairs with the highest affinity, there is a preference for lower genetic distances. Intriguingly, multiple strains show a propensity for mating with partners that yield higher-fitness hybrids on average. Collectively, our results provide compelling evidence that yeast actively engages in adaptive mate affinity.

evolutionary biology↗

Quantitative genetics of natural S. cerevisiae strains upon sexual mating reveals heritable determinants of cellular fitness

Quantitative genetics requires large datasets of diverse phenotyped-genotyped strains from the same species. A special need is for such archived biological material and computerized data in sexually reproducing individuals from a species. Here we leverage sexual mating among close to 100 diverse natural isolates of the yeast S. cerevisiae that form about 4,000 hybrids combinations in several ecologically relevant growth conditions. In a first genetic study of this new resource we focus on fitness measurements and its modes of inheritance as a quantitative trait from parents to offspring hybrids. We employ genomic barcoding of all strains and a barcode recombination technique to follow hybrids of each successful mate combination. For all parents, and separately for all offspring hybrids we measure fitness under each condition. We focus on the inheritance of fitness, the ultimate evolutionary trait, and its inheritance as a quantitative trait upon sexual mating. Predicting hybrid fitness given parental parameters is a major challenge as it is likely multi-factorial. We find that hybrids fitness in fermentable carbon source correlates positively, yet modestly, with parental fitness, while on non-fermentable carbon, hybrid fitness shows no detectable correlation with parental fitness. Instead, the non-fermentable condition, hybrid fitness increases sharply with genetic distance between their parents, suggesting that outbreeding maximizes fitness irrespective of parental fitness at that condition. The number of minor alleles in the genome of each hybrid, analogous to polygenic risk score in classical genetics, negatively correlates with fitness in both conditions. Fitness inheritance can be explained by either a dominance or a co-dominance modes of inheritance, in the non-fermentable and fermentable conditions respectively. Our newly suggested biological resource and data provide new foundations for a quantitative research in genetics and evolution upon sexual mating. Furthermore, our barcoded strains and mating tracking method provide an important research resource for the yeast community.

genetics↗