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酿酒酵母中液泡镉隔离的新途径:YCF1催化的双(谷胱甘肽硫醇)镉转运

A new pathway for vacuolar cadmium sequestration in Saccharomyces cerevisiae: YCF1-catalyzed transport of bis(glutathionato)cadmium.

作者信息

Li Z S, Lu Y P, Zhen R G, Szczypka M, Thiele D J, Rea P A

机构信息

Plant Science Institute, Department of Biology, University of Pennsylvania, Philadelphia 19104, USA.

出版信息

Proc Natl Acad Sci U S A. 1997 Jan 7;94(1):42-7. doi: 10.1073/pnas.94.1.42.

Abstract

The yeast cadmium factor (YCF1) gene encodes an MgATP-energized glutathione S-conjugate transporter responsible for the vacuolar sequestration of organic compounds after their S-conjugation with glutathione. However, while YCF1 was originally isolated according to its ability to confer resistance to cadmium salts, neither its mode of interaction with Cd2+ nor the relationship between this process and organic glutathione-conjugate transport are known. Here we show through direct comparisons between vacuolar membrane vesicles purified from Saccharomyces cerevisiae strain DTY167, harboring a deletion of the YCF1 gene, and the isogenic wild-type strain DTY165 that YCF1 mediates the MgATP-energized vacuolar accumulation of Cd-glutathione complexes. The substrate requirements, kinetics and Cd2+/glutathione stoichiometry of cadmium uptake and the molecular weight of the transport-active complex demonstrate that YCF1 selectively catalyzes the transport of bis(glutathionato)cadmium (Cd x +GS2). On the basis of these results--the Cd2+ hypersensitivity of DTY167, versus DTY165, cells, the inducibility of YCF1-mediated transport, and the rapidity and spontaneity of Cd-GS2 formation--this new pathway is concluded to contribute substantially to Cd2+ detoxification.

摘要

酵母镉因子(YCF1)基因编码一种由MgATP供能的谷胱甘肽S-共轭转运蛋白,负责将有机化合物与谷胱甘肽进行S-共轭后将其液泡隔离。然而,虽然YCF1最初是根据其赋予对镉盐抗性的能力而分离得到的,但其与Cd2+的相互作用模式以及该过程与有机谷胱甘肽共轭转运之间的关系尚不清楚。在这里,我们通过直接比较从酿酒酵母菌株DTY167(YCF1基因缺失)和同基因野生型菌株DTY165中纯化的液泡膜囊泡,发现YCF1介导了MgATP供能的镉-谷胱甘肽复合物的液泡积累。镉摄取的底物需求、动力学和Cd2+/谷胱甘肽化学计量以及转运活性复合物的分子量表明,YCF1选择性地催化双(谷胱甘肽硫醇)镉(Cd x +GS2)的转运。基于这些结果——DTY167细胞与DTY165细胞相比对Cd2+超敏感、YCF1介导的转运的可诱导性以及Cd-GS2形成的快速性和自发性——得出这一新途径对Cd2+解毒有重要贡献的结论。

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