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MELAS 突变 m.3243A>G 改变了线粒体 tRNA 片段的表达。

The MELAS mutation m.3243A>G alters the expression of mitochondrial tRNA fragments.

机构信息

RNA Modification and Mitochondrial Diseases Laboratory, Centro de Investigación Príncipe Felipe (CIPF), Carrer d'Eduardo Primo Yúfera 3, Valencia 46012, Spain.

Unidad de Genómica, Instituto de Investigación Sanitaria La Fe, Avenida Fernando Abril Martorell, 106 Torre A 7ª planta, Valencia 46026, Spain.

出版信息

Biochim Biophys Acta Mol Cell Res. 2019 Sep;1866(9):1433-1449. doi: 10.1016/j.bbamcr.2019.06.004. Epub 2019 Jun 11.

Abstract

Recent evidences highlight the importance of mitochondria-nucleus communication for the clinical phenotype of oxidative phosphorylation (OXPHOS) diseases. However, the participation of small non-coding RNAs (sncRNAs) in this communication has been poorly explored. We asked whether OXPHOS dysfunction alters the production of a new class of sncRNAs, mitochondrial tRNA fragments (mt tRFs), and, if so, whether mt tRFs play a physiological role and their accumulation is controlled by the action of mt tRNA modification enzymes. To address these questions, we used a cybrid model of MELAS (mitochondrial encephalomyopathy, lactic acidosis, and stroke-like episodes), an OXPHOS disease mostly caused by mutation m.3243A>G in the mitochondrial tRNA gene. High-throughput analysis of small-RNA-Seq data indicated that m.3243A>G significantly changed the expression pattern of mt tRFs. A functional analysis of potential mt tRFs targets (performed under the assumption that these tRFs act as miRNAs) indicated an association with processes that involve the most common affected tissues in MELAS. We present evidences that mt tRFs may be biologically relevant, as one of them (mt i-tRF GluUUC), likely produced by the action of the nuclease Dicer and whose levels are Ago2 dependent, down-regulates the expression of mitochondrial pyruvate carrier 1 (MPC1), promoting the build-up of extracellular lactate. Therefore, our study underpins the idea that retrograde signaling from mitochondria is also mediated by mt tRFs. Finally, we show that accumulation of mt i-tRF GluUUC depends on the modification status of mt tRNAs, which is regulated by the action of stress-responsive miRNAs on mt tRNA modification enzymes.

摘要

最近的证据强调了线粒体-核通讯对于氧化磷酸化(OXPHOS)疾病临床表型的重要性。然而,小分子非编码 RNA(sncRNA)在这种通讯中的参与仍未得到充分探索。我们想知道 OXPHOS 功能障碍是否会改变一类新的 sncRNA(线粒体 tRNA 片段,mt tRFs)的产生,如果是这样,mt tRFs 是否发挥生理作用,其积累是否受 mt tRNA 修饰酶的作用控制。为了解决这些问题,我们使用了 MELAS(线粒体脑肌病、乳酸酸中毒和卒中样发作)的杂种细胞模型,这是一种主要由线粒体 tRNA 基因 m.3243A>G 突变引起的 OXPHOS 疾病。高通量分析小 RNA-Seq 数据表明,m.3243A>G 显著改变了 mt tRFs 的表达模式。对潜在 mt tRFs 靶标的功能分析(基于这些 tRFs 作为 miRNA 发挥作用的假设)表明,它们与涉及 MELAS 中最常见受影响组织的过程有关。我们提供了证据表明 mt tRFs 可能具有生物学相关性,因为其中一种(mt i-tRF GluUUC)可能是由核酸酶 Dicer 的作用产生的,其水平依赖于 Ago2,下调了线粒体丙酮酸载体 1(MPC1)的表达,促进了细胞外乳酸的积累。因此,我们的研究支持了这样一种观点,即来自线粒体的逆行信号也由 mt tRFs 介导。最后,我们表明,mt i-tRF GluUUC 的积累取决于 mt tRNA 的修饰状态,这受应激反应性 miRNA 对 mt tRNA 修饰酶作用的调节。

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