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Mitochondrial Uncoupling Proteins: Subtle Regulators of Cellular Redox Signaling

机译:线粒体解偶联蛋白:细胞氧化还原信号的微调。

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摘要

>Significance: Mitochondria are the energetic, metabolic, redox, and information signaling centers of the cell. Substrate pressure, mitochondrial network dynamics, and cristae morphology state are integrated by the protonmotive force Δp or its potential component, ΔΨ, which are attenuated by proton backflux into the matrix, termed uncoupling. The mitochondrial uncoupling proteins (UCP1–5) play an eminent role in the regulation of each of the mentioned aspects, being involved in numerous physiological events including redox signaling.>Recent Advances: UCP2 structure, including purine nucleotide and fatty acid (FA) binding sites, strongly support the FA cycling mechanism: UCP2 expels FA anions, whereas uncoupling is achieved by the membrane backflux of protonated FA. Nascent FAs, cleaved by phospholipases, are preferential. The resulting Δp dissipation decreases superoxide formation dependent on Δp. UCP-mediated antioxidant protection and its impairment are expected to play a major role in cell physiology and pathology. Moreover, UCP2-mediated aspartate, oxaloacetate, and malate antiport with phosphate is expected to alter metabolism of cancer cells.>Critical Issues: A wide range of UCP antioxidant effects and participations in redox signaling have been reported; however, mechanisms of UCP activation are still debated. Switching off/on the UCP2 protonophoretic function might serve as redox signaling either by employing/releasing the extra capacity of cell antioxidant systems or by directly increasing/decreasing mitochondrial superoxide sources. Rapid UCP2 degradation, FA levels, elevation of purine nucleotides, decreased Mg2+, or increased pyruvate accumulation may initiate UCP-mediated redox signaling.>Future Directions: Issues such as UCP2 participation in glucose sensing, neuronal (synaptic) function, and immune cell activation should be elucidated. Antioxid. Redox Signal. 29, 667–714.
机译:>意义:线粒体是细胞的能量,代谢,氧化还原和信息信号传导中心。底物压力,线粒体网络动力学和cr形形态状态通过质子动力Δp或其势分量Δintegrated积分,这些质子被质子反流衰减到基质中,称为解耦。线粒体解偶联蛋白(UCP1-5)在上述各个方面的调控中均起着重要作用,参与了许多生理事件,包括氧化还原信号传导。>近期进展: UCP2结构,包括嘌呤核苷酸和脂肪酸(FA)结合位点强烈支持FA循环机制:UCP2排出FA阴离子,而去偶联作用是通过质子化FA的膜反流实现的。被磷脂酶切割的新生FA是优选的。所得的Δp耗散减少了取决于Δp的超氧化物的形成。 UCP介导的抗氧化剂保护及其损伤有望在细胞生理学和病理学中发挥重要作用。此外,UCP2介导的天冬氨酸,草酰乙酸和苹果酸与磷酸盐的反转运有望改变癌细胞的代谢。>关键问题:据报道,UCP的抗氧化作用广泛,并且参与了氧化还原信号的传递。但是,UCP激活的机制仍存在争议。通过使用/减少细胞抗氧化剂系统的额外容量或通过直接增加/减少线粒体超氧化物源,关闭/开启UCP2的质子体功能可能充当氧化还原信号。 UCP2的快速降解,FA水平,嘌呤核苷酸的升高,Mg 2 + 的减少或丙酮酸积累的增加可能会引发UCP介导的氧化还原信号传导。>未来方向:诸如UCP2之类的问题应阐明参与葡萄糖感应,神经元(突触)功能和免疫细胞激活。抗氧化。氧化还原信号。 29,667–714。

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