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运动对骨骼肌核糖体生物发生的遗传和表观遗传调控。

Genetic and epigenetic regulation of skeletal muscle ribosome biogenesis with exercise.

机构信息

Department of Physical Therapy, College of Health Sciences, University of Kentucky, Lexington, KY, USA.

The Center for Muscle Biology, University of Kentucky, Lexington, KY, USA.

出版信息

J Physiol. 2021 Jul;599(13):3363-3384. doi: 10.1113/JP281244. Epub 2021 Jun 3.

Abstract

KEY POINTS

Ribosome biogenesis and MYC transcription are associated with acute resistance exercise (RE) and are distinct from endurance exercise in human skeletal muscle throughout a 24 h time course of recovery. A PCR-based method for relative ribosomal DNA (rDNA) copy number estimation was validated by whole genome sequencing and revealed that rDNA dosage is positively correlated with ribosome biogenesis in response to RE. Acute RE modifies rDNA methylation patterns in enhancer, intergenic spacer and non-canonical MYC-associated regions, but not the promoter. Myonuclear-specific rDNA methylation patterns with acute mechanical overload in mice corroborate and expand on rDNA findings with RE in humans. A genetic predisposition for hypertrophic responsiveness may exist based on rDNA gene dosage.

ABSTRACT

Ribosomes are the macromolecular engines of protein synthesis. Skeletal muscle ribosome biogenesis is stimulated by exercise, although the contribution of ribosomal DNA (rDNA) copy number and methylation to exercise-induced rDNA transcription is unclear. To investigate the genetic and epigenetic regulation of ribosome biogenesis with exercise, a time course of skeletal muscle biopsies was obtained from 30 participants (18 men and 12 women; 31 ± 8 years, 25 ± 4 kg m ) at rest and 30 min, 3 h, 8 h and 24 h after acute endurance (n = 10, 45 min cycling, 70% ) or resistance exercise (n = 10, 4 × 7 × 2 exercises); 10 control participants underwent biopsies without exercise. rDNA transcription and dosage were assessed using quantitative PCR and whole genome sequencing. rDNA promoter methylation was investigated using massARRAY EpiTYPER and global rDNA CpG methylation was assessed using reduced-representation bisulphite sequencing. Ribosome biogenesis and MYC transcription were associated primarily with resistance but not endurance exercise, indicating preferential up-regulation during hypertrophic processes. With resistance exercise, ribosome biogenesis was associated with rDNA gene dosage, as well as epigenetic changes in enhancer and non-canonical MYC-associated areas in rDNA, but not the promoter. A mouse model of in vivo metabolic RNA labelling and genetic myonuclear fluorescence labelling validated the effects of an acute hypertrophic stimulus on ribosome biogenesis and Myc transcription, and also corroborated rDNA enhancer and Myc-associated methylation alterations specifically in myonuclei. The present study provides the first information on skeletal muscle genetic and rDNA gene-wide epigenetic regulation of ribosome biogenesis in response to exercise, revealing novel roles for rDNA dosage and CpG methylation.

摘要

要点

核糖体生物发生和 MYC 转录与急性抗阻运动(RE)有关,与人类骨骼肌在恢复的 24 小时时间过程中的耐力运动不同。一种基于 PCR 的相对核糖体 DNA(rDNA)拷贝数估计方法通过全基因组测序得到验证,结果表明 rDNA 剂量与 RE 反应中的核糖体生物发生呈正相关。急性 RE 改变了增强子、基因间间隔和非典型 MYC 相关区域的 rDNA 甲基化模式,但不改变启动子。在小鼠中,急性机械超负荷引起的核特异性 rDNA 甲基化模式与 RE 中的 rDNA 研究结果相符,并进一步扩展了 rDNA 的发现。基于 rDNA 基因剂量,可能存在对肥大反应性的遗传倾向。

摘要

核糖体是蛋白质合成的大分子引擎。运动刺激骨骼肌核糖体生物发生,尽管 rDNA 拷贝数和甲基化对运动诱导的 rDNA 转录的贡献尚不清楚。为了研究运动时核糖体生物发生的遗传和表观遗传调控,从 30 名参与者(18 名男性和 12 名女性;31 ± 8 岁,25 ± 4kg·m )中获得了骨骼肌活检,在休息时和急性耐力运动(n = 10,45 分钟的骑行,70%)或抗阻运动(n = 10,4×7×2 次运动)后 30 分钟、3 小时、8 小时和 24 小时。10 名对照参与者在没有运动的情况下接受了活检。使用定量 PCR 和全基因组测序评估 rDNA 转录和剂量。使用 MassARRAY EpiTYPER 研究 rDNA 启动子甲基化,使用降低代表性亚硫酸氢盐测序评估全局 rDNA CpG 甲基化。核糖体生物发生和 MYC 转录主要与抗阻运动有关,而与耐力运动无关,这表明在肥大过程中优先上调。与抗阻运动相比,核糖体生物发生与 rDNA 基因剂量以及 rDNA 增强子和非典型 MYC 相关区域的表观遗传变化有关,但与启动子无关。体内代谢 RNA 标记和遗传核荧光标记的小鼠模型验证了急性肥大刺激对核糖体生物发生和 Myc 转录的影响,并且还证实了 rDNA 增强子和 Myc 相关甲基化改变仅在核中特异性发生。本研究首次提供了关于运动反应中核糖体生物发生的骨骼肌遗传和 rDNA 基因广泛的表观遗传调控的信息,揭示了 rDNA 剂量和 CpG 甲基化的新作用。

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