Tissue regeneration and gut microbiota-skeletal muscle axis via microRNAs and nutrition: a systematic review

Rodrigo Augusto Carvalho Junqueira, Alexandre Carli Pinto
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Abstract

Introduction: In the scenario of muscle regeneration in athletes, maintenance of skeletal muscle function is the prerequisite for tissue homeostasis and increased performance. MicroRNAs play a positive role in expanding our understanding of the controlling factors for skeletal muscle function. Recent progress has been made regarding gut microbiota, regenerative nutrition, and skeletal muscle metabolism. Objective: It was to carry out a systematic review of the main relations of regeneration of skeletal muscle-gut microbiota through nutrological functions, cells, and microRNAs. Methods: The systematic review rules of the PRISMA Platform were followed. The research was carried out from February to April 2023 in Scopus, PubMed, Science Direct, Scielo, and Google Scholar databases. The quality of the studies was based on the GRADE instrument and the risk of bias was analyzed according to the Cochrane instrument. Results and Conclusion: A total of 217 articles were found. A total of 97 articles were fully evaluated and 49 were included and developed in the present systematic review study. Considering the Cochrane tool for risk of bias, the overall assessment resulted in 54 studies at high risk of bias and 34 studies that did not meet the GRADE. It was concluded that miRNAs are widely present in skeletal muscle and play an irreplaceable tuning role in the proliferation, differentiation, apoptosis, development, and other physiological processes of skeletal muscle cells. The proposal that miRNAs are primarily involved in the cell's stress response makes miRNAs ideal for mediating the skeletal muscle response to changes in contractile activity. Research has accumulated evidence that confirms that miRNAs have played an important regulatory role in cell proliferation and differentiation, thus regulating skeletal muscle growth as highlighted in the small intestine by intestinal stem cells (LGR5+). The ketogenic or high-glucose diet regulates the self-renewal balance of LGR5+. Self-renewal and HSC differentiation can be regulated by manipulating vitamin C, A, or D levels and valine restriction. The composition of each athlete's microbiome influences sports performance.
组织再生和肠道微生物群-骨骼肌轴通过microrna和营养:系统综述
在运动员肌肉再生的情况下,维持骨骼肌功能是组织稳态和提高运动成绩的先决条件。microrna在扩大我们对骨骼肌功能控制因素的理解方面发挥着积极的作用。近年来在肠道菌群、再生营养和骨骼肌代谢方面取得了进展。目的:从营养功能、细胞、microrna等方面对骨骼肌-肠道微生物群再生的主要关系进行系统综述。方法:遵循PRISMA平台的系统评价规则。该研究于2023年2月至4月在Scopus、PubMed、Science Direct、Scielo和b谷歌Scholar数据库中进行。研究质量采用GRADE评分工具,偏倚风险采用Cochrane评分工具进行分析。结果与结论:共检索文献217篇。本系统评价研究共纳入97篇文献,49篇文献被纳入和发展。考虑到Cochrane工具的偏倚风险,总体评估结果显示54项研究存在高偏倚风险,34项研究未达到GRADE标准。由此可见,mirna广泛存在于骨骼肌中,在骨骼肌细胞的增殖、分化、凋亡、发育等生理过程中发挥着不可替代的调节作用。mirna主要参与细胞应激反应的提议使mirna成为调节骨骼肌对收缩活动变化的反应的理想选择。研究积累的证据证实,mirna在细胞增殖和分化中发挥重要的调节作用,从而调节骨骼肌生长,小肠中肠道干细胞(LGR5+)尤为突出。生酮或高糖饮食调节LGR5+的自我更新平衡。自我更新和HSC分化可以通过操纵维生素C、A或D水平和缬氨酸限制来调节。每个运动员体内微生物群的组成都会影响运动成绩。
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