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植物中谷胱甘肽及其结合物的降解。

Degradation of glutathione and glutathione conjugates in plants.

机构信息

United Graduate School of Agricultural Science, Tokyo University of Agriculture and Technology, 3-5-8, Saiwai-cho, Fuchu, Tokyo, 183-8509, Japan.

RIKEN Center for Sustainable Resource Science, 1-7-22, Suehiro-cho, Tsurumi-ku, Yokohama, Kanagawa, 230-0045, Japan.

出版信息

J Exp Bot. 2023 Jun 6;74(11):3313-3327. doi: 10.1093/jxb/erad018.

Abstract

Glutathione (GSH) is a ubiquitous, abundant, and indispensable thiol for plants that participates in various biological processes, such as scavenging reactive oxygen species, redox signaling, storage and transport of sulfur, detoxification of harmful substances, and metabolism of several compounds. Therefore knowledge of GSH metabolism is essential for plant science. Nevertheless, GSH degradation has been insufficiently elucidated, and this has hampered our understanding of plant life. Over the last five decades, the γ-glutamyl cycle has been dominant in GSH studies, and the exoenzyme γ-glutamyl transpeptidase has been regarded as the major GSH degradation enzyme. However, recent studies have shown that GSH is degraded in cells by cytosolic enzymes such as γ-glutamyl cyclotransferase or γ-glutamyl peptidase. Meanwhile, a portion of GSH is degraded after conjugation with other molecules, which has also been found to be carried out by vacuolar γ-glutamyl transpeptidase, γ-glutamyl peptidase, or phytochelatin synthase. These findings highlight the need to re-assess previous assumptions concerning the γ-glutamyl cycle, and a novel overview of the plant GSH degradation pathway is essential. This review aims to build a foundation for future studies by summarizing current understanding of GSH/glutathione conjugate degradation.

摘要

谷胱甘肽(GSH)是一种普遍存在、丰富且必不可少的植物硫醇,参与各种生物过程,如清除活性氧、氧化还原信号、硫的储存和运输、有害物质解毒以及几种化合物的代谢。因此,了解 GSH 代谢对于植物科学至关重要。然而,GSH 的降解尚未得到充分阐明,这阻碍了我们对植物生命的理解。在过去的五十年中,γ-谷氨酰循环在 GSH 研究中占据主导地位,外切酶 γ-谷氨酰转肽酶被认为是主要的 GSH 降解酶。然而,最近的研究表明,细胞内的细胞质酶,如 γ-谷氨酰环转移酶或 γ-谷氨酰肽酶,可降解 GSH。同时,一部分 GSH 在与其他分子结合后被降解,这也被发现是由液泡 γ-谷氨酰转肽酶、γ-谷氨酰肽酶或植物螯合肽合酶完成的。这些发现强调了需要重新评估以前关于 γ-谷氨酰循环的假设,并且对植物 GSH 降解途径进行新的概述是必要的。本综述旨在通过总结当前对 GSH/谷胱甘肽缀合物降解的理解,为未来的研究奠定基础。

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