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单个体结构变异检测揭示了软体动物中广泛的半合子现象。

Single individual structural variant detection uncovers widespread hemizygosity in molluscs.

机构信息

Department of Evolutionary Biology, Integrative Zoology, University of Vienna, Althanstrasse 14, Vienna 1090, Austria.

Life Sciences, The Natural History Museum, Cromwell Road, London SW7 5BD, UK.

出版信息

Philos Trans R Soc Lond B Biol Sci. 2021 May 24;376(1825):20200153. doi: 10.1098/rstb.2020.0153. Epub 2021 Apr 5.

DOI:10.1098/rstb.2020.0153
PMID:33813894
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8059565/
Abstract

The advent of complete genomic sequencing has opened a window into genomic phenomena obscured by fragmented assemblies. A good example of these is the existence of hemizygous regions of autosomal chromosomes, which can result in marked differences in gene content between individuals within species. While these hemizygous regions, and presence/absence variation of genes that can result, are well known in plants, firm evidence has only recently emerged for their existence in metazoans. Here, we use recently published, complete genomes from wild-caught molluscs to investigate the prevalence of hemizygosity across a well-known and ecologically important clade. We show that hemizygous regions are widespread in mollusc genomes, not clustered in individual chromosomes, and often contain genes linked to transposition, DNA repair and stress response. With targeted investigations of and , we also show how individual gene families are distributed within pan-genomes. This work suggests that extensive pan-genomes are widespread across the conchiferan Mollusca, and represent useful tools for genomic evolution, allowing the maintenance of additional genetic diversity within the population. As genomic sequencing and re-sequencing becomes more routine, the prevalence of hemizygosity, and its impact on selection and adaptation, are key targets for research across the tree of life. This article is part of the Theo Murphy meeting issue 'Molluscan genomics: broad insights and future directions for a neglected phylum'.

摘要

全基因组测序的出现为我们揭示了那些被碎片化组装所掩盖的基因组现象。其中一个很好的例子是常染色体上存在半合区域,这会导致物种内个体之间的基因含量存在显著差异。虽然这些半合区域以及由此产生的基因缺失/获得的变异性在植物中早已为人所知,但在后生动物中,其存在的确凿证据直到最近才出现。在这里,我们使用最近发表的野生采集软体动物的完整基因组,来研究在一个著名的、具有重要生态意义的类群中半合性的普遍程度。我们发现,半合区域在软体动物基因组中广泛存在,不是在单个染色体上聚集,而且经常包含与转座、DNA 修复和应激反应相关的基因。通过对 和 的针对性研究,我们还展示了个体基因家族在泛基因组中的分布情况。这项工作表明,广泛的泛基因组在海螺类软体动物中普遍存在,它们是基因组进化的有用工具,允许在种群内维持额外的遗传多样性。随着基因组测序和重测序变得越来越常规,半合性的普遍性及其对选择和适应的影响,将成为整个生命之树研究的关键目标。本文是“Theo Murphy meeting issue 'Molluscan genomics: broad insights and future directions for a neglected phylum'”会议专刊的一部分。

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