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The environmental genomics of metazoan thermal adaptation

机译:后生动物热适应的环境基因组学

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摘要

Continued and accelerating change in the thermal environment places an ever-greater priority on understanding how organisms are going to respond. The paradigm of ‘move, adapt or die', regarding ways in which organisms can respond to environmental stressors, stimulates intense efforts to predict the future of biodiversity. Assuming that extinction is an unpalatable outcome, researchers have focussed attention on how organisms can shift in their distribution to stay in the same thermal conditions or can stay in the same place by adapting to a changing thermal environment. How likely these respective outcomes might be depends on the answer to a fundamental evolutionary question, namely what genetic changes underpin adaptation to the thermal environment. The increasing access to and decreasing costs of next-generation sequencing (NGS) technologies, which can be applied to both model and non-model systems, provide a much-needed tool for understanding thermal adaptation. Here we consider broadly what is already known from non-NGS studies about thermal adaptation, then discuss the benefits and challenges of different NGS methodologies to add to this knowledge base. We then review published NGS genomics and transcriptomics studies of thermal adaptation to heat stress in metazoans and compare these results with previous non-NGS patterns. We conclude by summarising emerging patterns of genetic response and discussing future directions using these increasingly common techniques.
机译:在热环境中持续不断的加速变化,对了解生物体将如何响应的关注日益重要。关于生物如何应对环境压力的方式,“运动,适应或死亡”的范式激发了人们为预测生物多样性的未来而付出的巨大努力。假设灭绝是不愉快的结果,研究人员将注意力集中在有机体如何通过适应不断变化的热环境而改变其分布以保持在相同的热条件下或可以保持在相同的位置。这些各自的结果可能发生的可能性取决于基本进化问题的答案,即哪些遗传变化是对热环境适应的基础。可以应用于模型和非模型系统的下一代测序(NGS)技术的日益普及和降低的成本,为理解热适应性提供了急需的工具。在这里,我们广泛地考虑了非NGS研究中关于热适应的已知知识,然后讨论了各种NGS方法的优点和挑战,以增加该知识库。然后,我们回顾了已发表的NGS基因组学和转录组学研究对后生动物热应激的热适应性,并将这些结果与以前的非NGS模式进行了比较。我们通过总结新兴的遗传反应模式并讨论使用这些日益普遍的技术的未来方向来得出结论。

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