AbstractThe electrical polarization of the inner mitochondrial membrane largely determines the electrochemical potential of hydroge'/> Functional Significance of the Mitochondrial Membrane Potential
首页> 外文期刊>Biochemistry (Moscow). Supplement, Series A. Membrane and cell biology >Functional Significance of the Mitochondrial Membrane Potential
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Functional Significance of the Mitochondrial Membrane Potential

机译:线粒体膜电位的功能意义

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AbstractThe electrical polarization of the inner mitochondrial membrane largely determines the electrochemical potential of hydrogen ifons, being thereby a significant factor in the energy transformation during oxidation of respiratory substrates and its accumulation in the form of newly synthesized ATP. However, the gradient of the electric potential on the inner mitochondrial membrane (ΔΨm) performs a number of functions not related to energy production. Even under hypoxic conditions, precluding the formation of ATP in mitochondria through oxidative phosphorylation, mitochondria maintain their ΔΨm at the expense of the hydrolysis of cellular ATP, which indicates the exceptional importance of ΔΨm for non-energetic functions of mitochondria. Among these functions, the mitochondrial inward transport of metal cations and proteins carrying a positively charged amino acid sequence and export of anions including nucleic acids possibly providing retrograde signaling, seem very important and essential for maintaining mitochondrial structure and metabolism. ΔΨm is a powerful regulator of mitochondrial generation of reactive oxygen species that perform physiological and pathological functions. And finally, ΔΨm is a critical element in the mechanism of disposal of dysfunctional mitochondria, the so-called quality control machinery of mitochondria. The disturbance of this mechanism leads to increase of heterogeneity in the population of mitochondria in the cell, and the degree of heterogeneity can be considered as an indicator of the pathological cellular phenotype. Correlation between Ψm and cell functions is difficult to identify without adequate quantitative estimates of the magnitude of ΔΨm, which are complicated due to several cellular and mitochondrial processes that affect the experimentally obtained values. Recommendations for assessing the contribution of these processes and avoiding artifacts in the measurements of ΔΨm by standard methods are given.]]>
机译:<![CDATA [<摘要ID =“ABS1”语言=“EN”> <标题>抽象 内部线粒体膜的电偏振在很大程度上决定了氢的电化学电位,从而产生了显着的呼吸底物氧化过程中能量转化的因子及其以新合成的ATP形式的积累。然而,内线粒体膜(ΔΣm)上的电势的梯度执行与能量产生无关的许多功能。即使在缺氧条件下,通过氧化磷酸化在线粒体中形成ATP,MitoChondRia也以牺牲细胞ATP的水解为代价维持其Δεm,这表明线粒体非能量功能的Δψm的特殊重要性。在这些功能中,金属阳离子和蛋白质的线粒体向内运输和携带带正电荷的氨基酸序列的蛋白质以及包括可能提供逆行信号传导的核酸的阴离子的出口似乎非常重要,并且对于维持线粒体结构和代谢来说是必不可少的。 Δε是一种稳定的线粒体产生的反应性氧物种调节剂,其进行生理和病理功能。最后,Δψm是处理功能障碍线粒体的机制中的关键因素,所谓的线粒体质量控制机械。该机制的扰动导致细胞中线粒体群中的异质性的增加,并且异质性程度可以被认为是病理细胞表型的指标。 M和细胞功能之间的相关性难以识别,而没有足够的Δεm的定量估计,这是由于几种影响实验获得的值的细胞和线粒体过程的复杂性。给出了评估这些过程的贡献和避免通过标准方法测量Δψm的术语的贡献的建议。 ]]>

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