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利用膜翅目昆虫 Nasonia vitripennis 研究发育过程中的性别偏向表达和共表达网络。

Sex biased expression and co-expression networks in development, using the hymenopteran Nasonia vitripennis.

机构信息

School of Biosciences, The University of Birmingham, Birmingham, United Kingdom.

Department of Biology, University of Rochester, Rochester, NY, United States of America.

出版信息

PLoS Genet. 2020 Jan 27;16(1):e1008518. doi: 10.1371/journal.pgen.1008518. eCollection 2020 Jan.

Abstract

Sexual dimorphism requires regulation of gene expression in developing organisms. These developmental differences are caused by differential expression of genes and isoforms. The effect of expressing a gene is also influenced by which other genes are simultaneously expressed (functional interactions). However, few studies have described how these processes change across development. We compare the dynamics of differential expression, isoform switching and functional interactions in the sexual development of the model parasitoid wasp Nasonia vitripennis, a system that permits genome wide analysis of sex bias from early embryos to adults. We find relatively little sex-bias in embryos and larvae at the gene level, but several sub-networks show sex-biased functional interactions in early developmental stages. These networks provide new candidates for hymenopteran sex determination, including histone modification. In contrast, sex-bias in pupae and adults is driven by the differential expression of genes. We observe sex-biased isoform switching consistently across development, but mostly in genes that are already differentially expressed. Finally, we discover that sex-biased networks are enriched by genes specific to the Nasonia clade, and that those genes possess the topological properties of key regulators. These findings suggest that regulators in sex-biased networks evolve more rapidly than regulators of other developmental networks.

摘要

性二型现象需要在发育生物体中调节基因表达。这些发育差异是由基因和同工型的差异表达引起的。基因表达的效果也受到同时表达的其他基因的影响(功能相互作用)。然而,很少有研究描述这些过程如何随发育而变化。我们比较了模式寄生蜂 Nasonia vitripennis 性发育中差异表达、同工型转换和功能相互作用的动态,该系统允许从早期胚胎到成虫对性别偏倚进行全基因组分析。我们发现,在基因水平上,胚胎和幼虫的性别偏倚相对较少,但在早期发育阶段的几个子网络中显示出性别偏倚的功能相互作用。这些网络为膜翅目性别决定提供了新的候选基因,包括组蛋白修饰。相比之下,蛹和成虫的性别偏倚是由基因的差异表达驱动的。我们在整个发育过程中观察到一致的性别偏倚同工型转换,但主要是在已经差异表达的基因中。最后,我们发现性别偏倚网络富含特定于 Nasonia 进化枝的基因,并且这些基因具有关键调节因子的拓扑性质。这些发现表明,性别偏倚网络中的调节因子比其他发育网络中的调节因子进化得更快。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/295f/7004391/350ee9909bad/pgen.1008518.g001.jpg

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