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在溞属动物中,早期转录反应途径在甲壳类动物特异性基因网络中被协调。

Early transcriptional response pathways in Daphnia magna are coordinated in networks of crustacean-specific genes.

机构信息

Environmental Genomics Group, School of Biosciences, University of Birmingham Edgbaston, Birmingham, UK.

Environmental Bioinformatics, Centre for Computational Biology, School of Biosciences, University of Birmingham Edgbaston, Birmingham, UK.

出版信息

Mol Ecol. 2018 Feb;27(4):886-897. doi: 10.1111/mec.14261. Epub 2017 Aug 19.

Abstract

Natural habitats are exposed to an increasing number of environmental stressors that cause important ecological consequences. However, the multifarious nature of environmental change, the strength and the relative timing of each stressor largely limit our understanding of biological responses to environmental change. In particular, early response to unpredictable environmental change, critical to survival and fitness in later life stages, is largely uncharacterized. Here, we characterize the early transcriptional response of the keystone species Daphnia magna to twelve environmental perturbations, including biotic and abiotic stressors. We first perform a differential expression analysis aimed at identifying differential regulation of individual genes in response to stress. This preliminary analysis revealed that a few individual genes were responsive to environmental perturbations and they were modulated in a stressor and genotype-specific manner. Given the limited number of differentially regulated genes, we were unable to identify pathways involved in stress response. Hence, to gain a better understanding of the genetic and functional foundation of tolerance to multiple environmental stressors, we leveraged the correlative nature of networks and performed a weighted gene co-expression network analysis. We discovered that approximately one-third of the Daphnia genes, enriched for metabolism, cell signalling and general stress response, drives transcriptional early response to environmental stress and it is shared among genetic backgrounds. This initial response is followed by a genotype- and/or condition-specific transcriptional response with a strong genotype-by-environment interaction. Intriguingly, genotype- and condition-specific transcriptional response is found in genes not conserved beyond crustaceans, suggesting niche-specific adaptation.

摘要

自然栖息地正面临着越来越多的环境胁迫,这些胁迫会导致重要的生态后果。然而,环境变化的多样性、每个胁迫的强度和相对时间限制了我们对生物对环境变化的反应的理解。特别是,对不可预测的环境变化的早期反应,对后期生命阶段的生存和适应至关重要,但在很大程度上还没有被描述。在这里,我们描述了关键物种大型溞对 12 种环境胁迫的早期转录反应,包括生物和非生物胁迫。我们首先进行了差异表达分析,旨在识别个体基因对胁迫的差异调控。这项初步分析表明,少数几个个体基因对环境扰动有反应,而且它们是以胁迫和基因型特异性的方式进行调节的。由于差异调控基因的数量有限,我们无法确定参与应激反应的途径。因此,为了更好地理解对多种环境胁迫的耐受的遗传和功能基础,我们利用网络的相关性进行了加权基因共表达网络分析。我们发现,大约三分之一的大型溞基因富集了代谢、细胞信号和一般应激反应,这些基因驱动了对环境胁迫的早期转录反应,并且在遗传背景中是共享的。这种初始反应之后是基因型和/或条件特异性的转录反应,具有很强的基因型-环境相互作用。有趣的是,在超越甲壳动物的基因中发现了基因型和条件特异性的转录反应,这表明了特定生态位的适应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5bdb/5785571/3a5d7362740d/nihms895517f1.jpg

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