Clemson Allannah S, Sgrò Carla M, Telonis-Scott Marina
School of Biological Sciences, Monash University, Clayton, Melbourne 3800, Australia.
School of Biological Sciences, Monash University, Clayton, Melbourne 3800, Australia.
Comp Biochem Physiol B Biochem Mol Biol. 2018 Feb;216:1-9. doi: 10.1016/j.cbpb.2017.11.003. Epub 2017 Nov 8.
We examined the transcriptional responses of desiccation resistance candidate genes in populations of Drosophila melanogaster divergent for desiccation resistance and in capacity to improve resistance via phenotypic plasticity. Adult females from temperate and tropical eastern Australian populations were exposed to a rapid desiccation hardening (RDH) treatment, and groups without RDH to acute desiccation stress, and the transcript expression of 12 candidate desiccation genes were temporally profiled during, and in recovery from stress. We found that desiccation exposure resulted in largely transitory, stress-specific transcriptional changes in all but one gene. However linking the expression profiles to the population-level phenotypic divergence was difficult given subtle, and time-point specific population expression variation. Nonetheless, rapid desiccation hardening had the largest effect on gene expression, resulting in distinct molecular profiles. We report a hitherto uncharacterised desiccation molecular hardening response where prior exposure essentially 'primes' genes to respond to subsequent stress without discernible transcript changes prior to stress. This, taken together with some population gene expression variation of several bona fide desiccation candidates associated with different water balance strategies speaks of the complexity of natural desiccation resistance and plasticity and provides new avenues for understanding the molecular basis of a trait of ecological significance.
我们研究了黑腹果蝇群体中抗干燥候选基因的转录反应,这些群体在抗干燥能力以及通过表型可塑性提高抗性的能力方面存在差异。来自澳大利亚东部温带和热带群体的成年雌性果蝇接受了快速干燥硬化(RDH)处理,未接受RDH处理的果蝇群体则暴露于急性干燥胁迫下,并在胁迫期间和恢复过程中对12个候选干燥基因的转录表达进行了时间动态分析。我们发现,除了一个基因外,干燥暴露在所有基因中都导致了很大程度上短暂的、应激特异性的转录变化。然而,鉴于群体表达存在细微的、特定时间点的差异,将表达谱与群体水平的表型差异联系起来很困难。尽管如此,快速干燥硬化对基因表达的影响最大,导致了明显的分子谱。我们报告了一种迄今未被描述的干燥分子硬化反应,即预先暴露基本上使基因“准备好”应对随后的胁迫,而在胁迫之前没有明显的转录变化。这与一些与不同水平衡策略相关的真正抗干燥候选基因的群体基因表达变化一起,说明了自然抗干燥和可塑性的复杂性,并为理解具有生态意义的性状的分子基础提供了新途径。