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线粒体载体蛋白可以可逆地改变其运输模式:天冬氨酸/谷氨酸载体和磷酸载体的情况。

Mitochondrial carrier proteins can reversibly change their transport mode: the cases of the aspartate/glutamate and the phosphate carrier.

作者信息

Krämer R

机构信息

Institute of Biotechnology 1, Forschungszentrum Juelich GmbH, Germany.

出版信息

Exp Physiol. 1998 Mar;83(2):259-65. doi: 10.1113/expphysiol.1998.sp004111.

Abstract

A number of mitochondrial carrier systems function both in homologous and in heterologous exchange mode, which, in the case of the phosphate carrier is a homologous Pi(-)-Pi- and a heterologous Pi(-)-OH- exchange. In addition, we showed that mitochondrial carriers, e.g. the aspartate/glutamate and the phosphate carrier, can undergo a functional shift from coupled antiport to uncoupled uniport after modification of cysteine residues. In this transport mode a mixture of carrier- and channel-type properties is observed. To address this question on the molecular level, the phosphate carrier from yeast (S. cerevisiae) mitochondria was expressed in E. coli, solubilized, purified and functionally reconstituted. From three cysteine residues present in the yeast phosphate carrier at positions 28, 134 and 300, only one single cysteine residue (C28) was found responsible for the functional switch from antiport to uniport. Upon replacement by a serine residue, this interconversion was blocked. After incorporation of the carrier into giant liposomes, electrophysiological methods (patch clamp) were applied. Under these conditions, a fourth transport mode of the phosphate carrier was observed, namely an action as anion-selective channel, which could be reversibly blocked by phosphate.

摘要

许多线粒体载体系统既以同源交换模式又以异源交换模式发挥作用,就磷酸载体而言,同源交换是Pi(-)-Pi-,异源交换是Pi(-)-OH-。此外,我们发现线粒体载体,如天冬氨酸/谷氨酸载体和磷酸载体,在半胱氨酸残基修饰后可从偶联反向转运转变为非偶联单向转运。在这种转运模式下,观察到载体型和通道型特性的混合。为了在分子水平上解决这个问题,将来自酵母(酿酒酵母)线粒体的磷酸载体在大肠杆菌中表达、溶解、纯化并进行功能重组。在酵母磷酸载体中位于28、134和300位的三个半胱氨酸残基中,只有一个半胱氨酸残基(C28)负责从反向转运到单向转运的功能转换。用丝氨酸残基取代后,这种相互转换被阻断。将载体整合到巨型脂质体中后,应用了电生理方法(膜片钳)。在这些条件下,观察到磷酸载体的第四种转运模式,即作为阴离子选择性通道起作用,它可被磷酸盐可逆性阻断。

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