Rivera Hanny E, Aichelman Hannah E, Fifer James E, Kriefall Nicola G, Wuitchik Daniel M, Wuitchik Sara J S, Davies Sarah W
Department of Biology, Boston University, Boston, MA, USA.
FAS Informatics, Harvard University, Cambridge, MA, USA.
Mol Ecol. 2021 Mar;30(6):1381-1397. doi: 10.1111/mec.15820. Epub 2021 Feb 19.
Phenotypic plasticity can serve as a stepping stone towards adaptation. Recently, studies have shown that gene expression contributes to emergent stress responses such as thermal tolerance, with tolerant and susceptible populations showing distinct transcriptional profiles. However, given the dynamic nature of gene expression, interpreting transcriptomic results in a way that elucidates the functional connection between gene expression and the observed stress response is challenging. Here, we present a conceptual framework to guide interpretation of gene expression reaction norms in the context of stress tolerance. We consider the evolutionary and adaptive potential of gene expression reaction norms and discuss the influence of sampling timing, transcriptomic resilience, as well as complexities related to life history when interpreting gene expression dynamics and how these patterns relate to host tolerance. We highlight corals as a case study to demonstrate the value of this framework for non-model systems. As species face rapidly changing environmental conditions, modulating gene expression can serve as a mechanistic link from genetic and cellular processes to the physiological responses that allow organisms to thrive under novel conditions. Interpreting how or whether a species can employ gene expression plasticity to ensure short-term survival will be critical for understanding the global impacts of climate change across diverse taxa.
表型可塑性可以作为通向适应的垫脚石。最近,研究表明基因表达有助于产生诸如耐热性等应激反应,耐受群体和敏感群体表现出不同的转录谱。然而,鉴于基因表达的动态性质,以阐明基因表达与观察到的应激反应之间功能联系的方式解释转录组学结果具有挑战性。在此,我们提出一个概念框架,以指导在应激耐受性背景下对基因表达反应规范的解释。我们考虑基因表达反应规范的进化和适应潜力,并讨论在解释基因表达动态以及这些模式如何与宿主耐受性相关时,采样时间、转录组弹性以及与生活史相关的复杂性的影响。我们以珊瑚为例进行研究,以证明该框架对非模式系统的价值。随着物种面临快速变化的环境条件,调节基因表达可以作为从遗传和细胞过程到生理反应的机制联系,使生物体能够在新条件下茁壮成长。解释一个物种如何或是否能够利用基因表达可塑性来确保短期生存,对于理解气候变化对不同分类群的全球影响至关重要。