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谷胱甘肽硫转移酶 U13 在病原体触发的硫代葡萄糖苷代谢中发挥作用。

Glutathione Transferase U13 Functions in Pathogen-Triggered Glucosinolate Metabolism.

机构信息

Institute of Bioorganic Chemistry, Polish Academy of Sciences, 61-704 Poznań, Poland.

Department of Plant Microbe Interactions, Max Planck Institute for Plant Breeding Research, 50829 Köln, Germany.

出版信息

Plant Physiol. 2018 Jan;176(1):538-551. doi: 10.1104/pp.17.01455. Epub 2017 Nov 9.

DOI:10.1104/pp.17.01455
PMID:29122987
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5761798/
Abstract

Glutathione (GSH) and indole glucosinolates (IGs) exert key functions in the immune system of the model plant Arabidopsis (). Appropriate GSH levels are important for execution of both pre- and postinvasive disease resistance mechanisms to invasive pathogens, whereas an intact PENETRATION2 (PEN2)-pathway for IG metabolism is essential for preinvasive resistance in this species. Earlier indirect evidence suggested that the latter pathway involves conjugation of GSH with unstable products of IG metabolism and further processing of the resulting adducts to biologically active molecules. Here we describe the identification of Glutathione--Transferase class-tau member 13 (GSTU13) as an indispensable component of the PEN2 immune pathway for IG metabolism. mutant plants are defective in the pathogen-triggered biosynthesis of end products of the PEN2 pathway, including 4-O-β-d-glucosyl-indol-3-yl formamide, indole-3-ylmethyl amine, and raphanusamic acid. In line with this metabolic defect, lack of functional GSTU13 results in enhanced disease susceptibility toward several fungal pathogens including , , and Seedlings of plants fail also to deposit the (1,3)-β-glucan cell wall polymer, callose, after recognition of the bacterial flg22 epitope. We show that GSTU13 mediates specifically the role of GSH in IG metabolism without noticeable impact on other immune functions of this tripeptide. We postulate that GSTU13 connects GSH with the pathogen-triggered PEN2 pathway for IG metabolism to deliver metabolites that may have numerous functions in the innate immune system of Arabidopsis.

摘要

谷胱甘肽 (GSH) 和吲哚葡萄糖苷 (IGs) 在拟南芥的免疫系统中发挥着关键作用。适当的 GSH 水平对于执行入侵性病原体的侵入前和侵入后疾病抗性机制非常重要,而完整的 PENETRATION2 (PEN2)-IG 代谢途径对于该物种的侵入前抗性至关重要。早期的间接证据表明,后一种途径涉及 GSH 与 IG 代谢不稳定产物的共轭,以及对所得加合物进行进一步处理以产生生物活性分子。在这里,我们描述了鉴定谷胱甘肽转移酶类 tau 成员 13 (GSTU13) 作为 PEN2 免疫途径中不可或缺的成分,用于 IG 代谢。mutant 植物在 PEN2 途径的病原体触发的终产物生物合成中存在缺陷,包括 4-O-β-d-葡萄糖基吲哚-3-基甲酰胺、吲哚-3-基甲胺和油菜酰胺酸。与这种代谢缺陷一致,缺乏功能的 GSTU13 导致对几种真菌病原体(包括 、 、 )的易感性增强。mutant 植物的幼苗在识别细菌 flg22 表位后也不能沉积 (1,3)-β-葡聚糖细胞壁聚合物几丁质。我们表明,GSTU13 特异性地介导 GSH 在 IG 代谢中的作用,而对该三肽的其他免疫功能没有明显影响。我们假设 GSTU13 将 GSH 与病原体触发的 PEN2 途径连接起来,用于 IG 代谢,以提供可能在拟南芥先天免疫系统中具有多种功能的代谢物。

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