Integrated analysis of miRNAome and transcriptome reveals that microgravity induces the alterations of critical functional gene modules via the regulation of miRNAs in short-term space-flownC. elegans

IF 2.9 3区 生物学 Q2 ASTRONOMY & ASTROPHYSICS
Xinye He , Lei Zhao , Baohang Huang , Ge Zhang , Ye Lu , Dong Mi , Yeqing Sun
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Abstract

Microgravity, as a unique hazardous factor encountered in space, can induce a series of harmful effects on living organisms. The impact of microgravity on the pivotal functional gene modules stemming from gene enrichment analysis via the regulation of miRNAs is not fully illustrated. To explore the microgravity-induced alterations in critical functional gene modules via the regulation of miRNAs, in the present study, we proposed a novel bioinformatics algorithm for the integrated analysis of miRNAome and transcriptome from short-term space-flown C. elegans. The samples of C. elegans were exposed to two space conditions, namely spaceflight (SF) and spaceflight control (SC) onboard the International Space Station for 4 days. Additionally, the samples of ground control (GC) were included for comparative analysis. Using the present algorithm, we constructed regulatory networks of functional gene modules annotated from differentially expressed genes (DEGs) and their associated regulatory differentially expressed miRNAs (DEmiRNAs). The results showed that functional gene modules of molting cycle, defense response, fatty acid metabolism, lysosome, and longevity regulating pathway were facilitated by 25 down-regulated DEmiRNAs (e.g., cel-miR-792, cel-miR-65, cel-miR-70, cel-lsy-6, cel-miR-796, etc.) in the SC vs. GC groups, whereas these modules were inhibited by 13 up-regulated DEmiRNAs (e.g., cel-miR-74, cel-miR-229, cel-miR-70, cel-miR-249, cel-miR-85, etc.) in the SF vs. GC groups. These findings indicated that microgravity could significantly alter gene expression patterns and their associated functional gene modules in short-term space-flown C. elegans. Additionally, we identified 34 miRNAs as post-transcriptional regulators that modulated these functional gene modules under microgravity conditions. Through the experimental verification, our results demonstrated that microgravity could induce the down-regulation of five critical functional gene modules (i.e., molting cycle, defense response, fatty acid metabolism, lysosome, and longevity regulating pathways) via the regulation of miRNAs in short-term space-flown C. elegans.

对miRNA组和转录组的综合分析表明,微重力通过调控miRNA诱导短期太空飞行秀丽隐杆线虫中关键功能基因模块的改变
微重力作为太空中特有的危险因素,会对生物体产生一系列有害影响。通过对miRNAs的调控进行基因富集分析,微重力对关键功能基因模块的影响尚未得到充分说明。为了探索微重力通过调控 miRNAs 引起的关键功能基因模块的改变,本研究提出了一种新的生物信息学算法,用于综合分析短期太空飞行的秀丽隐杆线虫的 miRNA 组和转录组。在国际空间站上,秀丽隐杆线虫样品暴露在两种空间条件下,即太空飞行(SF)和太空飞行对照(SC),为期4天。此外,我们还加入了地面对照样本(GC)进行比较分析。利用本算法,我们构建了由差异表达基因(DEGs)及其相关调控性差异表达 miRNAs(DEmiRNAs)注释的功能基因模块调控网络。结果表明,蜕皮周期、防御反应、脂肪酸代谢、溶酶体和长寿调节通路的功能基因模块受到 25 个下调的 DEmiRNAs(如:cel-miR-792、cel-miR-792、cel-miR-792、cel-miR-792、cel-miR-792)的调控、而在SF组与GC组中,这些模块受到13个上调DEmiRNA(如cel-miR-74、cel-miR-229、cel-miR-70、cel-miR-249、cel-miR-85等)的抑制。这些发现表明,微重力能显著改变短期太空飞行的秀丽隐杆线虫的基因表达模式及其相关功能基因模块。此外,我们还发现了 34 个 miRNAs 作为转录后调控因子,在微重力条件下调节了这些功能基因模块。通过实验验证,我们的结果表明微重力可通过调控miRNA诱导短期太空飞行秀丽隐杆线虫的五个关键功能基因模块(即蜕皮周期、防御反应、脂肪酸代谢、溶酶体和长寿调节途径)下调。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Life Sciences in Space Research
Life Sciences in Space Research Agricultural and Biological Sciences-Agricultural and Biological Sciences (miscellaneous)
CiteScore
5.30
自引率
8.00%
发文量
69
期刊介绍: Life Sciences in Space Research publishes high quality original research and review articles in areas previously covered by the Life Sciences section of COSPAR''s other society journal Advances in Space Research. Life Sciences in Space Research features an editorial team of top scientists in the space radiation field and guarantees a fast turnaround time from submission to editorial decision.
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