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Temperature-responsive miRNAs in Drosophila orchestrate adaptation to different ambient temperatures

机译:果蝇中的温度响应性miRNA协调对不同环境温度的适应

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摘要

The majority of Drosophila genes are expressed in a temperature-dependent manner, but the way in which small RNAs may contribute to this effect is completely unknown as we currently lack an idea of how small RNA transcriptomes change as a function of temperature. Applying high-throughput sequencing techniques complemented by quantitative real-time PCR experiments, we demonstrate that altered ambient temperature induces drastic but reversible changes in sequence composition and total abundance of both miRNA and piRNA populations. Further, mRNA sequencing reveals that the expression of miRNAs and their predicted target transcripts correlates inversely, suggesting that temperature-responsive miRNAs drive adaptation to different ambient temperatures on the transcriptome level. Finally, we demonstrate that shifts in temperature affect both primary and secondary piRNA pools, and the observed aberrations are consistent with altered expression levels of the involved Piwi-pathway factors. We further reason that enhanced ping–pong processing at 29°C is driven by dissolved RNA secondary structures at higher temperatures, uncovering target sites that are not accessible at low temperatures. Together, our results show that small RNAs are an important part of epigenetic regulatory mechanisms that ensure homeostasis and adaptation under fluctuating environmental conditions.
机译:果蝇的大多数基因以温度依赖的方式表达,但是小RNA可能导致这种作用的方式是完全未知的,因为我们目前尚不了解小RNA转录组随温度变化的方式。应用高通量测序技术,并辅以定量实时PCR实验,我们证明了改变的环境温度引起miRNA和piRNA群体的序列组成和总丰度急剧但可逆的变化。此外,mRNA测序揭示了miRNA的表达及其预测的目标转录本呈负相关,这表明温度响应性miRNA在转录组水平上驱动了对不同环境温度的适应。最后,我们证明温度的变化会影响主要和次要的piRNA池,并且观察到的像差与所涉及的Piwi途径因子的表达水平改变相一致。我们进一步认为,在较高的温度下,溶解的RNA二级结构会在29°C下增强乒乓处理,从而揭示了低温下无法接近的目标位点。总之,我们的结果表明,小RNA是表观遗传调控机制的重要组成部分,可确保环境波动环境下的稳态和适应性。

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