Kursu V A Samuli, Pietikäinen Laura P, Fontanesi Flavia, Aaltonen Mari J, Suomi Fumi, Raghavan Nair Remya, Schonauer Melissa S, Dieckmann Carol L, Barrientos Antoni, Hiltunen J Kalervo, Kastaniotis Alexander J
Department of Biochemistry and Biocenter Oulu, University of Oulu, FI-90014, Oulu, Finland.
Mol Microbiol. 2013 Nov;90(4):824-40. doi: 10.1111/mmi.12402. Epub 2013 Oct 10.
Mitochondrial fatty acid synthesis (mtFAS) shares acetyl-CoA with the Krebs cycle as a common substrate and is required for the production of octanoic acid (C8) precursors of lipoic acid (LA) in mitochondria. MtFAS is a conserved pathway essential for respiration. In a genetic screen in Saccharomyces cerevisiae designed to further elucidate the physiological role of mtFAS, we isolated mutants with defects in mitochondrial post-translational gene expression processes, indicating a novel link to mitochondrial gene expression and respiratory chain biogenesis. In our ensuing analysis, we show that mtFAS, but not lipoylation per se, is required for respiratory competence. We demonstrate that mtFAS is required for mRNA splicing, mitochondrial translation and respiratory complex assembly, and provide evidence that not LA per se, but fatty acids longer than C8 play a role in these processes. We also show that mtFAS- and LA-deficient strains suffer from a mild haem deficiency that may contribute to the respiratory complex assembly defect. Based on our data and previously published information, we propose a model implicating mtFAS as a sensor for mitochondrial acetyl-CoA availability and a co-ordinator of nuclear and mitochondrial gene expression by adapting the mitochondrial compartment to changes in the metabolic status of the cell.
线粒体脂肪酸合成(mtFAS)与三羧酸循环共享乙酰辅酶A作为共同底物,是线粒体中硫辛酸(LA)的辛酸(C8)前体生成所必需的。MtFAS是呼吸作用所必需的保守途径。在酿酒酵母中进行的旨在进一步阐明mtFAS生理作用的遗传筛选中,我们分离出了线粒体翻译后基因表达过程存在缺陷的突变体,这表明其与线粒体基因表达和呼吸链生物发生存在新的联系。在随后的分析中,我们表明呼吸能力需要mtFAS,而不是硫辛酸化本身。我们证明mtFAS是mRNA剪接、线粒体翻译和呼吸复合体组装所必需的,并提供证据表明不是LA本身,而是长度超过C8的脂肪酸在这些过程中起作用。我们还表明,缺乏mtFAS和LA的菌株存在轻度血红素缺乏,这可能导致呼吸复合体组装缺陷。基于我们的数据和先前发表的信息,我们提出了一个模型,认为mtFAS作为线粒体乙酰辅酶A可用性的传感器,并通过使线粒体区室适应细胞代谢状态的变化来协调核基因和线粒体基因的表达。