The rRNA epitranscriptome and myonuclear SNORD landscape in skeletal muscle fibers contributes to ribosome heterogeneity and is altered by a hypertrophic stimulus.

IF 5 2区 生物学 Q2 CELL BIOLOGY American journal of physiology. Cell physiology Pub Date : 2024-09-01 Epub Date: 2024-06-24 DOI:10.1152/ajpcell.00301.2024
Minying Cui, Paulo Jannig, Maral Halladjian, Vandré C Figueiredo, Yuan Wen, Ivan J Vechetti, Nicolai Krogh, Baptiste Jude, Sebastian Edman, Johanna Lanner, John McCarthy, Kevin A Murach, Thomas Sejersen, Henrik Nielsen, Ferdinand von Walden
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Abstract

In cell biology, ribosomal RNA (rRNA) 2'O-methyl (2'-O-Me) is the most prevalent posttranscriptional chemical modification contributing to ribosome heterogeneity. The modification involves a family of small nucleolar RNAs (snoRNAs) and is specified by box C/D snoRNAs (SNORDs). Given the importance of ribosome biogenesis for skeletal muscle growth, we asked if rRNA 2'-O-Me in nascent ribosomes synthesized in response to a growth stimulus is an unrecognized mode of ribosome heterogeneity in muscle. To determine the pattern and dynamics of 2'-O-Me rRNA, we used a sequencing-based profiling method called RiboMeth-seq (RMS). We applied this method to tissue-derived rRNA of skeletal muscle and rRNA specifically from the muscle fiber using an inducible myofiber-specific RiboTag mouse in sedentary and mechanically overloaded conditions. These analyses were complemented by myonuclear-specific small RNA sequencing to profile SNORDs and link the rRNA epitranscriptome to known regulatory elements generated within the muscle fiber. We demonstrate for the first time that mechanical overload of skeletal muscle 1) induces decreased 2'-O-Me at a subset of skeletal muscle rRNA and 2) alters the SNORD profile in isolated myonuclei. These findings point to a transient diversification of the ribosome pool via 2'-O-Me during growth and adaptation in skeletal muscle. These findings suggest changes in ribosome heterogeneity at the 2'-O-Me level during muscle hypertrophy and lay the foundation for studies investigating the functional implications of these newly identified "growth-induced" ribosomes.NEW & NOTEWORTHY Ribosomal RNAs (rRNAs) are posttranscriptionally modified by 2'O-methyl (2'-O-Me). This study applied RiboMeth-seq (RMS) to detect changes in 2'-O-Me levels during skeletal muscle hypertrophy, uncovering transient diversification of the ribosome pool in skeletal muscle fibers. This work implies a role for ribosome heterogeneity in skeletal muscle growth and adaptation.

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骨骼肌纤维中的 rRNA 表转录组和肌核 SNORD 图谱有助于核糖体的异质性,并因肥大刺激而改变。
在细胞生物学中,核糖体 RNA(rRNA)2'O-甲基(2'-O-Me)是导致核糖体异质性的最普遍的转录后化学修饰。这种修饰涉及一个小核RNA(snoRNA)家族,由盒C/D snoRNA(SNORD)指定。鉴于核糖体生物发生对骨骼肌生长的重要性,我们提出了一个问题:在对生长刺激做出反应时合成的新生核糖体中的 rRNA 2'-O-Me 是否是肌肉中核糖体异质性的一种未识别模式?为了确定 2'-O-Me rRNA 的模式和动态,我们使用了一种名为 RiboMeth-seq 的测序分析方法。我们将这种方法应用于骨骼肌组织来源的 rRNA,以及在静止和机械过载条件下使用诱导性肌纤维特异性 RiboTag 小鼠特异性地从肌纤维中提取的 rRNA。肌核特异性小 RNA 测序对这些分析进行了补充,以分析 SNORDs,并将 rRNA 表转录组与肌纤维内产生的已知调控元件联系起来。我们首次证明了骨骼肌的机械过载:1)诱导骨骼肌 rRNA 子集的 2'-O-Me 减少;2)改变离体肌核中的 SNORD 特征。这些发现表明,在骨骼肌的生长和适应过程中,核糖体池通过 2'-O-Me 发生了短暂的多样化。这些发现表明,在肌肉肥大过程中,核糖体在 2'-O-Me 水平上的异质性发生了变化,为研究这些新发现的 "生长诱导型 "核糖体的功能影响奠定了基础。
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来源期刊
CiteScore
9.10
自引率
1.80%
发文量
252
审稿时长
1 months
期刊介绍: The American Journal of Physiology-Cell Physiology is dedicated to innovative approaches to the study of cell and molecular physiology. Contributions that use cellular and molecular approaches to shed light on mechanisms of physiological control at higher levels of organization also appear regularly. Manuscripts dealing with the structure and function of cell membranes, contractile systems, cellular organelles, and membrane channels, transporters, and pumps are encouraged. Studies dealing with integrated regulation of cellular function, including mechanisms of signal transduction, development, gene expression, cell-to-cell interactions, and the cell physiology of pathophysiological states, are also eagerly sought. Interdisciplinary studies that apply the approaches of biochemistry, biophysics, molecular biology, morphology, and immunology to the determination of new principles in cell physiology are especially welcome.
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