my核DNA甲基化、mRNA和miRNA水平的协调调节与雌性小鼠对快速增效消融诱导的骨骼肌肥大的代谢反应相关

Function Pub Date : 2023-11-06 DOI:10.1093/function/zqad062
Ahmed Ismaeel, Nicholas T Thomas, Mariah McCashland, Ivan J Vechetti, Sebastian Edman, Johanna T Lanner, Vandré C Figueiredo, Christopher S Fry, John J McCarthy, Yuan Wen, Kevin A Murach, Ferdinand von Walden
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引用次数: 0

摘要

分子生物学的中心法则决定了DNA分子信息的一般流动,导致功能性细胞结果。在骨骼肌纤维中,考虑到表观遗传和转录后影响,总体髓核转录改变对适应性应激反应的影响程度尚未明确定义。在这项研究中,我们利用对肌核特异性DNA甲基组和转录组的综合分析,以及肌核小RNA谱来分子定义骨骼肌纤维肥大的早期阶段。肌核特异性成熟miRNA和其他小RNA物种的分析为探索肌肉适应性提供了新的方向,并补充了甲基化和转录信息。我们的综合多组学研究揭示了肌肉负荷过程中肌核分子景观的协调,与氧化代谢的急性和快速减少相吻合。这种反应可能有利于支持快速肥厚生长的以生物合成为导向的代谢程序。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Coordinated Regulation of Myonuclear DNA Methylation, mRNA, And miRNA Levels Associates with The Metabolic Response to Rapid Synergist Ablation-Induced Skeletal Muscle Hypertrophy in Female Mice
Abstract The central dogma of molecular biology dictates the general flow of molecular information from DNA that leads to a functional cellular outcome. In skeletal muscle fibers, the extent to which global myonuclear transcriptional alterations, accounting for epigenetic and post-transcriptional influences, contribute to an adaptive stress response is not clearly defined. In this investigation, we leveraged an integrated analysis of the myonucleus-specific DNA methylome and transcriptome, as well as myonuclear small RNA profiling to molecularly define the early phase of skeletal muscle fiber hypertrophy. The analysis of myonucleus-specific mature miRNA and other small RNA species provides new directions for exploring muscle adaptation and complemented the methylation and transcriptional information. Our integrated multi-omics interrogation revealed a coordinated myonuclear molecular landscape during muscle loading that coincides with an acute and rapid reduction of oxidative metabolism. This response may favor a biosynthesis-oriented metabolic program that supports rapid hypertrophic growth.
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