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Loss of the Mitochondrial Fatty Acid β-Oxidation Protein Medium-Chain Acyl-Coenzyme A Dehydrogenase Disrupts Oxidative Phosphorylation Protein Complex Stability and Function

机译:阻滞线粒体脂肪酸β-氧化蛋白质中链酰基 - 辅酶脱氢酶破坏氧化磷酸化蛋白复合稳定性和功能

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Medium-chain acyl-Coenzyme A dehydrogenase (MCAD) is involved in the initial step of mitochondrial fatty acid β-oxidation (FAO). Loss of function results in MCAD deficiency, a disorder that usually presents in childhood with hypoketotic hypoglycemia, vomiting and lethargy. While the disruption of mitochondrial fatty acid metabolism is the primary metabolic defect, secondary defects in mitochondrial oxidative phosphorylation (OXPHOS) may also contribute to disease pathogenesis. Therefore, we examined OXPHOS activity and stability in MCAD-deficient patient fibroblasts that have no detectable MCAD protein. We found a deficit in mitochondrial oxygen consumption, with reduced steady-state levels of OXPHOS complexes I, III and IV, as well as the OXPHOS supercomplex. To examine the mechanisms involved, we generated an MCAD knockout (KO) using human 143B osteosarcoma cells. These cells also exhibited defects in OXPHOS complex function and steady-state levels, as well as disrupted biogenesis of newly-translated OXPHOS subunits. Overall, our findings suggest that the loss of MCAD is associated with a reduction in steady-state OXPHOS complex levels, resulting in secondary defects in OXPHOS function which may contribute to the pathology of MCAD deficiency.
机译:中链酰基 - 辅酶脱氢酶(MCAD)参与线粒体脂肪酸β-氧化(粮农组织)的初始步骤。丧失功能导致MCAD缺乏,一种通常在儿童期患有低钾低血糖症,呕吐和嗜睡的疾病。虽然线粒体脂肪酸代谢的破坏是初级代谢缺陷,但线粒体氧化磷酸化(汤膦)中的二次缺陷也可能有助于疾病发病机制。因此,我们检查了没有可检测的MCAD蛋白的MCAD缺陷型患者成纤维细胞中的汤膦活性和稳定性。我们发现线粒体氧消耗的缺点,具有降低的稳态水平氧基复合物I,III和IV,以及毒物超复杂。为了检查所涉及的机制,我们使用人143b骨肉瘤细胞生成MCAD敲除(KO)。这些细胞还表现出毒物复合函数和稳态水平的缺陷,以及破坏新翻译的毒物亚基的生物发生。总体而言,我们的研究结果表明,MCAD的损失与稳态毒物复合水平的降低有关,导致毒物功能中的二次缺陷,这可能有助于MCAD缺乏的病理。

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