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UCP2 transports C4 metabolites out of mitochondria regulating glucose and glutamine oxidation

机译:UCP2将C4代谢物转运出线粒体调节葡萄糖和谷氨酰胺氧化

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摘要

Uncoupling protein 2 (UCP2) is involved in various physiological and pathological processes such as insulin secretion, stem cell differentiation, cancer, and aging. However, its biochemical and physiological function is still under debate. Here we show that UCP2 is a metabolite transporter that regulates substrate oxidation in mitochondria. To shed light on its biochemical role, we first studied the effects of its silencing on the mitochondrial oxidation of glucose and glutamine. Compared with wild-type, UCP2-silenced human hepatocellular carcinoma (HepG2) cells, grown in the presence of glucose, showed a higher inner mitochondrial membrane potential and ATP:ADP ratio associated with a lower lactate release. Opposite results were obtained in the presence of glutamine instead of glucose. UCP2 reconstituted in lipid vesicles catalyzed the exchange of malate, oxaloacetate, and aspartate for phosphate plus a proton from opposite sides of the membrane. The higher levels of citric acid cycle intermediates found in the mitochondria of siUCP2-HepG2 cells compared with those found in wild-type cells in addition to the transport data indicate that, by exporting C4 compounds out of mitochondria, UCP2 limits the oxidation of acetyl-CoA–producing substrates such as glucose and enhances glutaminolysis, preventing the mitochondrial accumulation of C4 metabolites derived from glutamine. Our work reveals a unique regulatory mechanism in cell bioenergetics and provokes a substantial reconsideration of the physiological and pathological functions ascribed to UCP2 based on its purported uncoupling properties.
机译:解偶联蛋白2(UCP2)参与各种生理和病理过程,例如胰岛素分泌,干细胞分化,癌症和衰老。然而,其生化和生理功能仍在争论中。在这里,我们显示UCP2是一种代谢物转运蛋白,可调节线粒体中的底物氧化。为了阐明其生化作用,我们首先研究了其沉默对葡萄糖和谷氨酰胺的线粒体氧化的影响。与野生型相比,UCP2沉默的人类肝细胞癌细胞(HepG2)在葡萄糖存在下生长,显示出更高的线粒体内膜电位和ATP:ADP比值与较低的乳酸释放相关。在存在谷氨酰胺而不是葡萄糖的情况下获得了相反的结果。重构在脂质囊泡中的UCP2催化了苹果酸,草酰乙酸和天冬氨酸从膜的相反侧向磷酸酯和质子的交换。在siUCP2-HepG2细胞的线粒体中发现的柠檬酸循环中间体的水平高于在野生型细胞中发现的柠檬酸循环中间体,除了转运数据以外,这表明,通过从线粒体中输出C4化合物,UCP2限制了乙酰基产生CoA的底物,例如葡萄糖,可增强谷氨酰胺分解作用,从而防止线粒体积累源自谷氨酰胺的C4代谢产物。我们的工作揭示了细胞生物能学中独特的调控机制,并基于其所谓的解偶联性质,引发了对归因于UCP2的生理和病理功能的重大反思。

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