Department of Ecological and Biological Sciences, University of Tuscia, Viterbo, Italy.
Department of Clinical Medicine and Translational Science, University of Rome Tor Vergata, Rome, Italy.
Sci Rep. 2017 Nov 13;7(1):15376. doi: 10.1038/s41598-017-15612-1.
The response of human primary osteoblasts exposed to simulated microgravity has been investigated and analysis of metabolomic and proteomic profiles demonstrated a prominent dysregulation of mitochondrion homeostasis. Gravitational unloading treatment induced a decrease in mitochondrial proteins, mainly affecting efficiency of the respiratory chain. Metabolomic analysis revealed that microgravity influenced several metabolic pathways; stimulating glycolysis and the pentose phosphate pathways, while the Krebs cycle was interrupted at succinate-fumarate transformation. Interestingly, proteomic analysis revealed that Complex II of the mitochondrial respiratory chain, which catalyses the biotransformation of this step, was under-represented by 50%. Accordingly, down-regulation of quinones 9 and 10 was measured. Complex III resulted in up-regulation by 60%, while Complex IV was down-regulated by 14%, accompanied by a reduction in proton transport synthesis of ATP. Finally, microgravity treatment induced an oxidative stress response, indicated by significant decreases in oxidised glutathione and antioxidant enzymes. Decrease in malate dehydrogenase induced a reverse in the malate-aspartate shuttle, contributing to dysregulation of ATP synthesis. Beta-oxidation of fatty acids was inhibited, promoting triglyceride production along with a reduction in the glycerol shuttle. Taken together, our findings suggest that microgravity may suppress bone cell functions, impairing mitochondrial energy potential and the energy state of the cell.
已经研究了暴露于模拟微重力的人原代成骨细胞的反应,并且对代谢组学和蛋白质组学谱的分析表明线粒体稳态的明显失调。重力卸载处理导致线粒体蛋白减少,主要影响呼吸链的效率。代谢组学分析表明,微重力影响了几种代谢途径;刺激糖酵解和戊糖磷酸途径,而三羧酸循环在琥珀酸-延胡索酸转化处中断。有趣的是,蛋白质组学分析表明,线粒体呼吸链的复合物 II,其催化此步骤的生物转化,减少了 50%。相应地,测量到醌 9 和 10 的下调。复合物 III 上调了 60%,而复合物 IV 下调了 14%,伴随着质子转运合成 ATP 的减少。最后,微重力处理诱导氧化应激反应,表现为氧化型谷胱甘肽和抗氧化酶显著减少。苹果酸脱氢酶的减少引起苹果酸-天冬氨酸穿梭的反向,导致 ATP 合成的失调。脂肪酸的β氧化受到抑制,促进甘油三酯的产生,同时甘油穿梭减少。总之,我们的研究结果表明,微重力可能会抑制骨细胞的功能,损害线粒体的能量潜力和细胞的能量状态。