Chromosome‐level genome assembly and population genomic analysis reveal evolution and local adaptation in common hairfin anchovy (Setipinna tenuifilis)

生物 局部适应 进化生物学 人口 群体基因组学 遗传学 基因组 基因组学 基因 社会学 人口学
作者
Bingjian Liu,Jiasheng Li,Ying Peng,Kun Zhang,Qi Liu,Xun Jin,Sixu Zheng,Yunpeng Wang,Li Gong,Liqin Liu,Zhenming Lü,Yifan Liu
出处
期刊:Molecular Ecology [Wiley]
卷期号:33 (10) 被引量:3
标识
DOI:10.1111/mec.17067
摘要

Abstract Understanding the genetic structure and the factors associated with adaptive diversity has significant implications for the effective management of wild populations under threat from overfishing and climate change. The common hairfin anchovy ( Setipinna tenuifilis ) is an economically and ecologically important pelagic fish species, spanning a broad latitudinal gradient along marginal seas of the Northwest Pacific. In this study, we constructed the first reference genome of S. tenuifilis using PacBio long reads and high‐resolution chromosome conformation capture (Hi‐C) technology. The assembled genome was 798.38 Mb with a contig N50 of 1.43 Mb and a scaffold N50 of 32.42 Mb, which were anchored onto 24 pseudochromosomes. A total of 22,019 genes were functionally annotated, which accounted for 95.27% of the predicted protein‐coding genes. Chromosomal collinearity analysis revealed chromosome fusion or fission events in Clupeiformes species. Three genetic groups of S. tenuifilis were revealed along the Chinese coast using restriction site‐associated DNA sequencing (RADseq). We investigated the influence of four bioclimatic variables as potential drivers of adaptive divergence in S. tenuifilis , suggesting that these environmental variables, especially sea surface temperature, may play important roles as drivers of spatially varying selection for S. tenuifilis . We also identified candidate functional genes underlying adaptive mechanisms and ecological tradeoffs using redundancy analysis (RDA) and BayeScan analysis. In summary, this study sheds light on the evolution and spatial patterns of genetic variation of S. tenuifilis , providing a valuable genomic resource for further biological and genetic studies on this species and other closely related Clupeiformes.

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