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PLoS computational biology. 2025 Jun 11;21(6):e1013164. doi: 10.1371/journal.pcbi.1013164 Q13.82024

Network architecture of transcriptomic stress responses in zebrafish embryos

斑马鱼胚胎转录组应激反应的网络架构 翻译改进

Kaylee Beine  1, Lauric Feugere  2, Alexander P Turner  3, Katharina C Wollenberg Valero  1  4

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作者单位

  • 1 School of Biology and Environmental Science, University College Dublin, Dublin, Ireland.
  • 2 Département de Biologie, Chimie et Géographie, University of Quebec at Rimouski, Rimouski, Canada.
  • 3 Department of Computer Science, University of Nottingham, Nottingham, United Kingdom.
  • 4 Conway Institute, University College Dublin, Dublin, Ireland.
  • DOI: 10.1371/journal.pcbi.1013164 PMID: 40498872

    摘要 中英对照阅读

    Protein-protein interaction (PPI) network topology can contribute to explaining fundamental properties of genes, from expression levels to evolutionary constraints. Genes central to a network are more likely to be both conserved and highly expressed, whereas genes that are able to evolve in response to selective pressures but expressed at lower levels are located on the periphery of the network. The stress response is likewise thought to be conserved and its associated genes highly expressed, however, experimental evidence for these patterns is limited. Therefore, we examined here whether the transcriptomic response to two environmental stressors (heat, UV, and their combination) is related to PPI architecture in zebrafish (Danio rerio) embryos. We show that stress response genes are situated more centrally in the PPI network. The transcriptomic response to heat was located in both central and peripheral positions, whereas UV response transcripts occupied central to intermediate positions. Network position was further linked to the magnitude of fold changes of genes and types and number of their associated phenotype GO terms. Across treatments, differentially expressed genes in different parts of the network affected identical phenotypes. Our results indicate that the zebrafish stress response is considered conserved but also have stressor-specific aspects. These properties can aid in better understanding the organismal response to diverse and co-occurring stressors. Given the speed of contemporary changes in aquatic ecosystems, our approach can aid in identifying novel key regulators of the systemic response to specific stressors.

    Keywords:network architecture; zebrafish embryos

    蛋白质-蛋白质相互作用(PPI)网络拓扑结构有助于解释基因的基本特性,从表达水平到进化约束。位于网络中心的基因更有可能被保守且高表达,而能够对选择压力作出进化的但低表达的基因则位于网络外围。同样地,应激反应被认为具有保守性并且与其相关联的基因高度表达,然而,支持这种模式的实验证据有限。因此,我们在此研究了斑马鱼(Danio rerio)胚胎在两种环境胁迫因子(热、紫外线及其组合)下的转录组响应是否与PPI架构有关。我们发现应激反应基因位于PPI网络更中心的位置。对热的转录组响应既出现在中央也出现在外围位置,而紫外线响应转录本则位于从中央到中间的位置。网络位置进一步与基因倍数变化的幅度以及其相关联表型GO术语的类型和数量相联系。在不同处理中,网络不同部分的差异表达基因影响相同的表型。我们的研究结果表明斑马鱼应激反应被认为是保守的但也具有特定于胁迫因子的特点。这些特性有助于更好地理解生物体对多样且共存的胁迫因子的响应。鉴于水生生态系统当前变化的速度,我们的方法可以帮助识别系统性响应特定胁迫因素的关键调控者。

    关键词:网络架构; 转录组应激反应; 斑马鱼胚胎

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    期刊名:Plos computational biology

    缩写:PLOS COMPUT BIOL

    ISSN:1553-7358

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    IF/分区:3.8/Q1

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