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Genomic basis for coral resilience to climate change

机译:珊瑚抗御气候变化的基因组基础

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Recent advances in DNA-sequencing technologies now allow for in-depth characterization of the genomic stress responses of many organisms beyond model taxa. They are especially appropriate for organisms such as reef-building corals, for which dramatic declines in abundance are expected to worsen as anthropogenic climate change intensifies. Different corals differ substantially in physiological resilience to environmental stress, but the molecular mechanisms behind enhanced coral resilience remain unclear. Here, we compare transcriptome-wide gene expression (via RNA-Seq using Illumina sequencing) among conspecific thermally sensitive and thermally resilient corals to identify the molecular pathways contributing to coral resilience. Under simulated bleaching stress, sensitive and resilient corals change expression of hundreds of genes, but the resilient corals had higher expression under control conditions across 60 of these genes. These "frontloaded" transcripts were less up-regulated in resilient corals during heat stress and included thermal tolerance genes such as heat shock proteins and antioxidant enzymes, as well as a broad array of genes involved in apoptosis regulation, tumor suppression, innate immune response, and cell adhesion. We propose that constitutive f rontload-ing enables an individual to maintain physiological resilience during frequently encountered environmental stress, an idea that has strong parallels in model systems such as yeast. Our study provides broad insight into the fundamental cellular processes responsible for enhanced stress tolerances that may enable some organisms to better persist into the future in an era of global climate change.
机译:DNA测序技术的最新进展现在允许对除模型分类群以外的许多生物的基因组应激反应进行深入表征。它们尤其适用于诸如造礁珊瑚的生物,随着人为气候变化的加剧,预计其丰度的急剧下降会加剧。不同的珊瑚在对环境压力的生理适应能力上有很大的不同,但增强的珊瑚适应能力背后的分子机制仍不清楚。在这里,我们比较了特定的热敏感和热弹性珊瑚之间的转录组全基因表达(通过使用Illumina测序的RNA-Seq),以确定有助于珊瑚弹性的分子途径。在模拟的漂白胁迫下,敏感和有弹性的珊瑚会改变数百个基因的表达,但在控制条件下,有60个基因的弹性珊瑚具有较高的表达。这些“前载”转录本在热胁迫期间在弹性珊瑚中的表达较少上调,其中包括热耐受基因,例如热休克蛋白和抗氧化酶,以及涉及凋亡调控,肿瘤抑制,先天免疫应答,和细胞粘附。我们提出本构性加载使个体能够在经常遇到的环境压力下保持生理弹性,这种想法在诸如酵母等模型系统中具有很强的相似性。我们的研究为引起压力耐受性增强的基本细胞过程提供了广泛的见识,这些过程可能使某些生物在全球气候变化时代更好地坚持到未来。

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