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谷胱甘肽 S-转移酶 pi 和过氧化物还原酶 6 在完整细胞中的功能相互作用。

Functional interaction of glutathione S-transferase pi and peroxiredoxin 6 in intact cells.

机构信息

Institute for Environmental Medicine, University of Pennsylvania Perelman School of Medicine, Philadelphia, PA 19104-6068, United States.

出版信息

Int J Biochem Cell Biol. 2013 Feb;45(2):401-7. doi: 10.1016/j.biocel.2012.11.005. Epub 2012 Nov 16.

Abstract

Peroxiredoxin 6 (Prdx6) is a 1-Cys member of the peroxiredoxin superfamily that plays an important role in antioxidant defense. Glutathionylation of recombinant Prdx6 mediated by π glutathione S-transferase (GST) is required for reduction of the oxidized Cys and completion of the peroxidatic catalytic cycle in vitro. This study investigated the requirement for πGST in intact cells. Transfection with a plasmid construct expressing πGST into MCF7, a cell line that lacks endogenous πGST, significantly increased phospholipid peroxidase activity as measured in cell lysates and protected intact cells against a peroxidative stress. siRNA knockdown indicated that this increased peroxidase activity was Prdx6 dependent. Interaction between πGST and Prdx6, evaluated by the Duolink Proximity Ligation Assay, was minimal under basal conditions but increased dramatically following treatment of cells with the oxidant, tert-butyl hydroperoxide. Interaction was abolished by mutation of C47, the active site for Prdx6 peroxidase activity. Depletion of cellular GSH by treatment of cells with buthionine sulfoximine had no effect on the interaction of Prdx6 and πGST. These data are consistent with the hypothesis that oxidation of the catalytic cysteine in Prdx6 is required for its interaction with πGST and that the interaction plays an important role in regenerating the peroxidase activity of Prdx6.

摘要

过氧化物还原酶 6(Prdx6)是过氧化物还原酶超家族的 1-Cys 成员,在抗氧化防御中发挥重要作用。π谷胱甘肽 S-转移酶(GST)介导的重组 Prdx6 的谷胱甘肽化对于还原氧化的半胱氨酸并完成体外过氧催化循环是必需的。本研究调查了完整细胞中 πGST 的需求。将表达 πGST 的质粒构建体转染到 MCF7(一种缺乏内源性 πGST 的细胞系)中,可显着增加细胞裂解物中测定的磷脂过氧化物酶活性,并保护完整细胞免受过氧化物应激。siRNA 敲低表明这种增加的过氧化物酶活性依赖于 Prdx6。通过 Duolink 邻近连接测定评估的 πGST 和 Prdx6 之间的相互作用在基础条件下最小,但在用氧化剂叔丁基过氧化物处理细胞后显着增加。该相互作用通过 C47(Prdx6 过氧化物酶活性的活性位点)的突变而被废除。用丁硫氧嘧啶处理细胞以耗尽细胞内 GSH 对 Prdx6 和 πGST 的相互作用没有影响。这些数据与假设一致,即 Prdx6 中催化半胱氨酸的氧化对于其与 πGST 的相互作用是必需的,并且该相互作用在 Prdx6 的过氧化物酶活性的再生中起重要作用。

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