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全球范围内对运动诱导成年海马神经发生中的 RNA 结合蛋白的探索:转录组元分析和计算研究。

Global Exploration of RNA-Binding Proteins in Exercise-Induced Adult Hippocampal Neurogenesis: A Transcriptome Meta-analysis and Computational Study.

机构信息

School of Chemical and Biotechnology, SASTRA Deemed to be University, Thanjavur, 613401, India.

出版信息

Biochem Genet. 2022 Dec;60(6):2471-2488. doi: 10.1007/s10528-022-10230-7. Epub 2022 May 11.

Abstract

Voluntary physical exercise is a robust enhancer of adult hippocampal neurogenesis (AHN). A complete understanding of the molecular regulation of AHN is important in order to exploit the benefits of the process toward therapeutic approaches. Several factors such as epigenetic modifiers, non-coding RNAs, and transcription factors have been reported to regulate AHN. However, there is a limited understanding of the impact of RNA-binding proteins (RBPs) on exercise-mediated AHN, in spite of their well-documented significance in embryonic neurogenesis. The present study is the first global analysis to catalog the potential RBPs influencing exercise-mediated AHN. Here, a transcriptome meta-analysis was conducted to study exercise-mediated gene expression modulation in hippocampi of adult mice. Next, potential RBPs influencing transcriptome-wide expression changes via untranslated regions (UTRs) were identified. Among other RBPs, MATR3, Musashi, TIA1, and FXR2 (known critical modulators of neurogenesis) were found to potentially regulate gene expression patterns. Subsequently, binding sites of known neurogenesis-regulating RBPs were identified in the UTRs of AHN-associated genes modulated by exercise. Finally, a number of RBPs including RBFOX1, RBFOX3, and QKI (known regulators of neurogenesis) were found to be highly expressed in mouse hippocampal formation and also potentially interact with other RBPs, suggesting their combinatorial functioning in exercise-induced AHN. Thus, the present meta-analysis-based computational study identified several RBPs potentially important in exercise-induced AHN, which could form a foundation for further experiments to unravel RBP-mediated regulation of AHN.

摘要

自愿性体力活动是成人海马神经发生(AHN)的强大增强剂。为了利用该过程对治疗方法的益处,全面了解 AHN 的分子调控机制非常重要。已经报道了几种因素,如表观遗传修饰物、非编码 RNA 和转录因子,可调节 AHN。然而,尽管 RNA 结合蛋白(RBPs)在胚胎神经发生中具有重要作用,但对其在运动介导的 AHN 中的影响的了解有限。本研究是首次对影响运动介导的 AHN 的潜在 RBPs 进行全面分析的研究。在这里,进行了转录组荟萃分析,以研究成年小鼠海马中运动介导的基因表达调控。接下来,通过非翻译区(UTR)确定了影响全转录组表达变化的潜在 RBP。在其他 RBPs 中,MATR3、Musashi、TIA1 和 FXR2(已知的神经发生关键调节剂)被发现可能调节基因表达模式。随后,在运动调节的 AHN 相关基因的 UTR 中鉴定了已知神经发生调节 RBPs 的结合位点。最后,发现了一些 RBPs,包括 RBFOX1、RBFOX3 和 QKI(已知的神经发生调节剂),它们在小鼠海马结构中高度表达,并且可能与其他 RBPs 相互作用,表明它们在运动诱导的 AHN 中具有组合功能。因此,本基于荟萃分析的计算研究鉴定了几种在运动诱导的 AHN 中可能很重要的 RBPs,这可以为进一步的实验提供基础,以揭示 RBP 介导的 AHN 调节。

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