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四苯膦和十二烷基三苯基膦与脂质膜和线粒体的相互作用。

Interaction of tetraphenylphosphonium and dodecyltriphenylphosphonium with lipid membranes and mitochondria.

机构信息

Bach Institute of Biochemistry, Russian Academy of Sciences, 119071 Moscow, Russia.

出版信息

Biochemistry (Mosc). 2012 Sep;77(9):1021-8. doi: 10.1134/S000629791209009X.

Abstract

The permeability of a planar lipid membrane (composed of diphytanoylphosphatidylcholine) for tetraphenylphosphonium (TPP) was investigated. The observed level of the diffusion potential generated as a function of the TPP concentration gradient differed from the theoretically expected value, possibly due to proton leakage of the membrane mediated by the traces of fatty acids in the phospholipid forming the membrane. Using the molecular dynamics approach to study movement of TPP and dodecyltriphenylphosphonium (C(12)TPP) with different affinity to the lipid bilayer through a bilayer lipid membrane, it was found that C(12)TPP has a greater affinity to the membrane surface than TPP. However, the two cations have the same activation energy for transmembrane transfer. Interaction of TPP and C(12)TPP with tightly-coupled mitochondria from the yeast Yarrowia lipolytica was also investigated. At low, micromolar concentrations, both cations are "relatively weak, mild uncouplers", do not shunt electron transfer along the respiratory chain, do not disturb (damage) the inner mitochondrial membrane, and profoundly promote the uncoupling effect of fatty acids. At higher concentrations they inhibit respiration in state 3, and at much higher concentrations they induce swelling of mitochondria, possibly due to their detergent action.

摘要

研究了平面脂膜(由二植烷酰基磷脂酰胆碱组成)对四苯膦(TPP)的通透性。观察到的扩散电位水平随 TPP 浓度梯度的变化与理论预期值不同,这可能是由于形成膜的磷脂中的脂肪酸痕迹介导的膜质子泄漏所致。使用分子动力学方法研究了 TPP 和具有不同亲脂双层亲和力的十二烷基三苯基膦(C(12)TPP)通过双层脂质膜的运动,发现 C(12)TPP 与膜表面的亲和力大于 TPP。然而,这两种阳离子对于跨膜转移具有相同的活化能。还研究了 TPP 和 C(12)TPP 与来自酵母 Yarrowia lipolytica 的紧密耦联线粒体的相互作用。在低、微摩尔浓度下,两种阳离子都是“相对较弱、温和的解偶联剂”,不会使电子传递沿着呼吸链分流,不会干扰(破坏)线粒体的内膜,并显著促进脂肪酸的解偶联作用。在较高浓度下,它们会抑制状态 3 的呼吸,而在更高浓度下,它们会诱导线粒体肿胀,这可能是由于它们的去污作用。

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