Xiaoshen Yin
Biochemistry, Genetics and Molecular Biology · Purdue University West Lafayette
Publications
18
Citations
113
Est. group size
~3
Recurring co-author estimate
Active years
8
Publishing since 2019
Xiaoshen Yin's research focuses on the genetics of marine organisms, especially shellfish like Pacific oysters and scallops, and fish such as yellow perch. Work includes mapping genetic traits linked to growth and survival, studying how populations adapt genetically to new or changing environments, and developing genetic tools to help manage and conserve wild and farmed shellfish stocks. This research combines population genetics (study of genetic variation within and between populations) with applications in aquaculture (farming of aquatic species) and conservation.
Publication output was minimal in 2017-2018, rose modestly through 2019-2021, dipped in 2022, then increased to a steadier pace of 2-4 papers per year from 2023 through 2026.
Generated by claude-sonnet-5 from public bibliographic data · Jul 20, 2026
- Heritable Genetic Effects Caused by a Single Generation of Captive Breeding
Evolutionary Applications · 2026
- Navigating tradeoffs in variant filtering for population genetic and demographic inferences to inform management, conservation, and domestication in non-model marine bivalves: a case study in scallop
BMC Genomics · 2026
- Assessing the potential of runs of homozygosity to infer stock status of commercial bivalves under ongoing anthropogenic disturbances
ICES Journal of Marine Science · 2026
- Corrigendum to “QTL mapping reveals predominantly nonadditive genetic architecture of heterotic growth traits in yearling Pacific oysters Crassostrea gigas” [Aquaculture 596 (2025) 741892, February 2025].
Aquaculture · 2025
- A novel method for in vivo assessment of soft tissue weight in scallops
Aquaculture Reports · 2025
- QTL mapping reveals predominantly nonadditive genetic architecture of heterotic growth traits in yearling Pacific oysters Crassostrea gigas
Aquaculture · 2024
- Rapid genetic adaptation to a novel ecosystem despite a large founder event
Molecular Ecology · 2023
- Rapid genetic adaptation to a novel ecosystem despite a massive bottleneck
2023
- Rapid genetic adaptation to a novel ecosystem despite a massive bottleneck
2023
- Great Lakes yellow perch vcf files
Figshare · 2023
- Overt and concealed genetic loads revealed by QTL mapping of genotype-dependent viability in the Pacific oyster<i>Crassostrea gigas</i>
Genetics · 2021
- Rapid genetic adaptation to recently colonized environments is driven by genes underlying life history traits
BMC Genomics · 2021
- Incipient resistance to an effective pesticide results from genetic adaptation and the canalization of gene expression
Evolutionary Applications · 2020
- High-Density Linkage Maps Based on Genotyping-by-Sequencing (GBS) Confirm a Chromosome-Level Genome Assembly and Reveal Variation in Recombination Rate for the Pacific Oyster<i>Crassostrea gigas</i>
G3 Genes Genomes Genetics · 2020
- Bayesian hierarchical modeling of yield in incomplete diallel crosses of the Pacific oyster Crassostrea gigas
Aquaculture · 2019
- Aquaculture×3
- Evolutionary Applications×2
- BMC Genomics×2
- bioRxiv (Cold Spring Harbor Laboratory)×2
- Molecular Ecology×1
- Mark R. Christie
Biochemistry, Genetics and Molecular Biology · Purdue University West Lafayette
- Andrew N. Black
Biochemistry, Genetics and Molecular Biology · Purdue University West Lafayette
- William Hemstrom
Biochemistry, Genetics and Molecular Biology · Purdue University West Lafayette
- Michael G. Sovic
Biochemistry, Genetics and Molecular Biology · The Ohio State University
- Andrew J. Mularo
Biochemistry, Genetics and Molecular Biology · Purdue University West Lafayette
This profile was generated automatically from public scholarly data (OpenAlex). Group size and activity levels are estimates derived from co-authorship patterns.
Last updated Jul 20, 2026.
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