Rachel A. Steward, Peter Pruisscher, Kevin T. Roberts, Christopher W. Wheat
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Using 96 samples spread over two tissues and 10 timepoints, we compare the extent of differential splicing and expression between diapausing and direct developing pupae of the butterfly Pieris napi. Splicing differs strongly between diapausing and direct developing trajectories but alters a smaller and functionally unique set of genes compared to differential expression. We further test the hypothesis that among these expressed loci, plastically spliced genes are likely to experience the strongest purifying selection to maintain seasonally plastic phenotypes. Genes with unique transcriptional changes through diapause consistently had the lowest nucleotide diversity, and this effect was consistently stronger among genes that were differentially spliced compared to those with just differential expression through diapause. Further, the strength of negative selection was higher in the population expressing diapause every generation. Our results suggest that maintenance of the molecular mechanisms involved in diapause progression, including post-transcriptional modifications, are highly conserved and likely to experience genetic constraints, especially in northern populations of P. napi.","PeriodicalId":12991,"journal":{"name":"Heredity","volume":"132 3","pages":"142-155"},"PeriodicalIF":3.1000,"publicationDate":"2024-01-30","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.nature.com/articles/s41437-024-00669-2.pdf","citationCount":"0","resultStr":"{\"title\":\"Genetic constraints in genes exhibiting splicing plasticity in facultative diapause\",\"authors\":\"Rachel A. Steward, Peter Pruisscher, Kevin T. Roberts, Christopher W. Wheat\",\"doi\":\"10.1038/s41437-024-00669-2\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Phenotypic plasticity is produced and maintained by processes regulating the transcriptome. 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引用次数: 0
摘要
表型的可塑性是通过调节转录组来产生和维持的。虽然基因表达差异是这些过程中最重要的过程之一,但人们对转录变异的其他来源知之甚少。以前的研究表明,替代剪接在转录可塑性中发挥着广泛而独特的功能作用,尽管弹性剪接基因可能比其余表达基因受到更多限制。在这项研究中,我们探讨了表达和剪接可塑性之间的关系,以及这些基因在生态学上具有重要意义的多态性:暂时休眠。我们利用分布在两种组织和 10 个时间点上的 96 个样本,比较了停歇蛹和直接发育蛹(Pieris napi)之间不同剪接和表达的程度。在滞育和直接发育轨迹之间,剪接差异很大,但与差异表达相比,改变的基因数量较少且功能独特。我们进一步验证了一个假设,即在这些表达基因位点中,塑性剪接基因可能会经历最强烈的净化选择,以维持季节性可塑性表型。在休眠期发生独特转录变化的基因的核苷酸多样性一直最低,与在休眠期仅有差异表达的基因相比,这种效应在有差异剪接的基因中一直较强。此外,在每一代都表达休眠的群体中,负选择的强度更高。我们的研究结果表明,包括转录后修饰在内的参与停歇进展的分子机制的维持是高度保守的,很可能会受到遗传限制,尤其是在 P. napi 的北方种群中。
Genetic constraints in genes exhibiting splicing plasticity in facultative diapause
Phenotypic plasticity is produced and maintained by processes regulating the transcriptome. While differential gene expression is among the most important of these processes, relatively little is known about other sources of transcriptional variation. Previous work suggests that alternative splicing plays an extensive and functionally unique role in transcriptional plasticity, though plastically spliced genes may be more constrained than the remainder of expressed genes. In this study, we explore the relationship between expression and splicing plasticity, along with the genetic diversity in those genes, in an ecologically consequential polyphenism: facultative diapause. Using 96 samples spread over two tissues and 10 timepoints, we compare the extent of differential splicing and expression between diapausing and direct developing pupae of the butterfly Pieris napi. Splicing differs strongly between diapausing and direct developing trajectories but alters a smaller and functionally unique set of genes compared to differential expression. We further test the hypothesis that among these expressed loci, plastically spliced genes are likely to experience the strongest purifying selection to maintain seasonally plastic phenotypes. Genes with unique transcriptional changes through diapause consistently had the lowest nucleotide diversity, and this effect was consistently stronger among genes that were differentially spliced compared to those with just differential expression through diapause. Further, the strength of negative selection was higher in the population expressing diapause every generation. Our results suggest that maintenance of the molecular mechanisms involved in diapause progression, including post-transcriptional modifications, are highly conserved and likely to experience genetic constraints, especially in northern populations of P. napi.
期刊介绍:
Heredity is the official journal of the Genetics Society. It covers a broad range of topics within the field of genetics and therefore papers must address conceptual or applied issues of interest to the journal''s wide readership