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miTomirs 在线粒体中的不同平台:调节线粒体功能的新兴方面。

Different platforms for mitomiRs in mitochondria: Emerging facets in regulation of mitochondrial functions.

机构信息

Department of Biochemistry, Faculty of Science, The M.S. University of Baroda, Vadodara 390002, Gujarat, India; Department of Genomic Medicine, Lerner Research Institute, Cleveland Clinic, Cleveland, Ohio 44195, United States.

Department of Biochemistry, Faculty of Science, The M.S. University of Baroda, Vadodara 390002, Gujarat, India; Department of Molecular and Human Genetics, Banaras Hindu University, Varansi 221005, India.

出版信息

Mitochondrion. 2022 Sep;66:67-73. doi: 10.1016/j.mito.2022.08.003. Epub 2022 Aug 6.

Abstract

Mitochondria are one of the central organelles involved in cellular energy metabolism and play a regulatory role in various human pathologies ranging from inborn errors of metabolism, cancer, inflammation, and infections. Mitochondrial DNA encodes limited number of genes that is not sufficient for its optimal functioning. Hence, mitochondria import ∼1500 of proteins and ncRNAs from the nucleus depending on energy requirement of cell, tissue size, complexity and diversity of functions. Mitochondrial outer membrane can serve as a platform for regulation of local translation of nuclear-encoded mRNAs of mitochondrial proteins (nmRNAmp); however, underlying molecular mechanism for translational regulation of nmRNAmp at mitochondria is unexplored. Emerging evidence now suggest that mitochondria are enriched with specific miRNAs known as mitomiRs, which may be nuclear or mitochondrial DNA encoded. MitomiRs may modulate mitochondrial function and metabolism by fine-tuning protein levels related to mitochondria. The discovery of mitomiRs raised the questions of elucidating molecular pathways for their biogenesis, translocation, action sites and mechanism of action. Here, we have reviewed the existing reports describing the role of mitomiRs in sub mitochondrial compartments and discussed possible molecular mechanisms of mitomiRs in the regulation of nmRNAmp and mitogenome encoded transcripts. Further understanding of mitomiRs will uncover their implication in various pathophysiological conditions associated with mitochondria.

摘要

线粒体是参与细胞能量代谢的核心细胞器之一,在各种人类疾病中发挥着调节作用,范围从代谢性遗传病、癌症、炎症和感染。线粒体 DNA 编码的基因数量有限,不足以使其发挥最佳功能。因此,线粒体根据细胞的能量需求、组织大小、功能的复杂性和多样性,从细胞核中输入约 1500 种蛋白质和 ncRNAs。线粒体的外膜可以作为调节核编码线粒体蛋白(nmRNAmp)局部翻译的平台;然而,nmRNAmp 在翻译水平上的调节的潜在分子机制仍未被探索。新出现的证据表明,线粒体富含特定的 miRNA,称为 mitomiRs,这些 miRNA 可能是核编码或线粒体 DNA 编码的。mitomiRs 可以通过微调与线粒体相关的蛋白质水平来调节线粒体的功能和代谢。mitomiRs 的发现提出了阐明其生物发生、易位、作用部位和作用机制的分子途径的问题。在这里,我们综述了描述 mitomiRs 在亚线粒体区室中的作用的现有报道,并讨论了 mitomiRs 在调节 nmRNAmp 和线粒体基因组编码的转录物中的可能分子机制。对 mitomiRs 的进一步了解将揭示它们在与线粒体相关的各种病理生理条件中的作用。

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