RNA Modification and Mitochondrial Diseases Laboratory, Centro de Investigación Príncipe Felipe (CIPF), Valencia, 46012, Spain.
Faculty of Sciences, Abdelmalek Essaadi University, Tetouan, BP.2121, Morocco.
Sci Rep. 2018 Jan 18;8(1):1163. doi: 10.1038/s41598-018-19587-5.
Human proteins MTO1 and GTPBP3 are thought to jointly catalyze the modification of the wobble uridine in mitochondrial tRNAs. Defects in each protein cause infantile hypertrophic cardiomyopathy with lactic acidosis. However, the underlying mechanisms are mostly unknown. Using fibroblasts from an MTO1 patient and MTO1 silenced cells, we found that the MTO1 deficiency is associated with a metabolic reprogramming mediated by inactivation of AMPK, down regulation of the uncoupling protein 2 (UCP2) and transcription factor PPARγ, and activation of the hypoxia inducible factor 1 (HIF-1). As a result, glycolysis and oxidative phosphorylation are uncoupled, while fatty acid metabolism is altered, leading to accumulation of lipid droplets in MTO1 fibroblasts. Unexpectedly, this response is different from that triggered by the GTPBP3 defect, as GTPBP3-depleted cells exhibit AMPK activation, increased levels of UCP2 and PPARγ, and inactivation of HIF-1. In addition, fatty acid oxidation and respiration are stimulated in these cells. Therefore, the HIF-PPARγ-UCP2-AMPK axis is operating differently in MTO1- and GTPBP3-defective cells, which strongly suggests that one of these proteins has an additional role, besides mitochondrial-tRNA modification. This work provides new and useful information on the molecular basis of the MTO1 and GTPBP3 defects and on putative targets for therapeutic intervention.
人类蛋白 MTO1 和 GTPBP3 被认为共同催化线粒体 tRNA 上的摆动尿嘧啶的修饰。每种蛋白的缺陷都会导致婴儿肥厚型心肌病伴酸中毒。然而,其潜在机制大多未知。利用 MTO1 患者的成纤维细胞和沉默 MTO1 的细胞,我们发现 MTO1 缺乏与 AMPK 失活、解偶联蛋白 2 (UCP2) 和转录因子过氧化物酶体增殖物激活受体γ (PPARγ)下调以及缺氧诱导因子 1 (HIF-1) 激活介导的代谢重编程有关。结果,糖酵解和氧化磷酸化解偶联,而脂肪酸代谢发生改变,导致 MTO1 成纤维细胞中脂质滴的积累。出乎意料的是,这种反应与 GTPBP3 缺陷引发的反应不同,因为 GTPBP3 耗尽的细胞表现出 AMPK 激活、UCP2 和 PPARγ 水平增加以及 HIF-1 失活。此外,这些细胞中的脂肪酸氧化和呼吸被刺激。因此,MTO1 和 GTPBP3 缺陷细胞中的 HIF-PPARγ-UCP2-AMPK 轴的作用不同,这强烈表明这些蛋白之一除了线粒体 tRNA 修饰外还有其他作用。这项工作为 MTO1 和 GTPBP3 缺陷的分子基础以及潜在的治疗干预靶点提供了新的有用信息。