Rbm24-mediated post-transcriptional regulation of skeletal and cardiac muscle development, function and regeneration.

IF 1.8 3区 生物学 Q4 CELL BIOLOGY Journal of Muscle Research and Cell Motility Pub Date : 2024-11-30 DOI:10.1007/s10974-024-09685-5
De-Li Shi, Raphaëlle Grifone, Xiangmin Zhang, Hongyan Li
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Abstract

RNA-binding proteins are critically involved in the post-transcriptional control of gene expression during embryonic development and in adult life, contributing to regulating cell differentiation and maintaining tissue homeostasis. Compared to the relatively well documented functions of transcription factors, the regulatory roles of RNA-binding proteins in muscle development and function remain largely elusive. However, deficiency of many RNA-binding proteins has been associated with muscular defects, neuromuscular disorders and heart diseases, such as myotonic dystrophy, amyotrophic lateral sclerosis, and cardiomyopathy. Rbm24 is highly conserved among vertebrates and is one of the best characterized RNA-binding proteins with crucial implication in the myogenic and cardiomyogenic programs. It presents the distinctive particularity of displaying highly restricted expression in both skeletal and cardiac muscles, with changes in subcellular localization during the process of differentiation. Functional analyses using different vertebrate models have clearly demonstrated its requirement for skeletal muscle differentiation and regeneration as well as for myocardium organization and cardiac function, by regulating the expression of both common and distinct target genes in these tissues. The challenge remains to decipher the dynamic feature of post-transcriptional circuits regulated by Rbm24 during skeletal myogenesis, cardiomyogenesis, and muscle repair. This review discusses current understanding of its function in striated muscles and its possible implication in human disease, with the aim of identifying research gaps for future investigation.

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rbm24介导的骨骼肌和心肌发育、功能和再生的转录后调控。
rna结合蛋白在胚胎发育和成年过程中对基因表达的转录后调控至关重要,有助于调节细胞分化和维持组织稳态。与转录因子的功能相比,rna结合蛋白在肌肉发育和功能中的调节作用在很大程度上仍然是难以捉摸的。然而,许多rna结合蛋白的缺乏与肌肉缺陷、神经肌肉疾病和心脏疾病有关,如肌强直性营养不良、肌萎缩侧索硬化症和心肌病。Rbm24在脊椎动物中高度保守,是最具特征的rna结合蛋白之一,在肌生成和心肌生成程序中具有重要意义。它在骨骼肌和心肌中均表现出高度受限的表达,并在分化过程中发生亚细胞定位的变化。利用不同脊椎动物模型进行的功能分析清楚地表明,通过调节骨骼肌分化和再生以及心肌组织和心脏功能中常见和独特靶基因的表达,它对骨骼肌分化和再生以及心肌组织和心脏功能都有要求。在骨骼肌发生、心肌发生和肌肉修复过程中,Rbm24调控的转录后回路的动态特征仍然是一个挑战。这篇综述讨论了目前对其在横纹肌中的功能的理解及其在人类疾病中的可能含义,目的是确定未来研究的研究空白。
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来源期刊
CiteScore
6.20
自引率
0.00%
发文量
21
审稿时长
>12 weeks
期刊介绍: The Journal of Muscle Research and Cell Motility has as its main aim the publication of original research which bears on either the excitation and contraction of muscle, the analysis of any one of the processes involved therein, the processes underlying contractility and motility of animal and plant cells, the toxicology and pharmacology related to contractility, or the formation, dynamics and turnover of contractile structures in muscle and non-muscle cells. Studies describing the impact of pathogenic mutations in genes encoding components of contractile structures in humans or animals are welcome, provided they offer mechanistic insight into the disease process or the underlying gene function. The policy of the Journal is to encourage any form of novel practical study whatever its specialist interest, as long as it falls within this broad field. Theoretical essays are welcome provided that they are concise and suggest practical ways in which they may be tested. Manuscripts reporting new mutations in known disease genes without validation and mechanistic insight will not be considered. It is the policy of the journal that cells lines, hybridomas and DNA clones should be made available by the developers to any qualified investigator. Submission of a manuscript for publication constitutes an agreement of the authors to abide by this principle.
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