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海藻糖-6-磷酸合酶的次要功能是抵抗黄曲霉中氧化和干燥胁迫的需要。

A secondary function of trehalose-6-phosphate synthase is required for resistance to oxidative and desiccation stress in Fusarium verticillioides.

机构信息

Mund-Lagowski Department of Chemistry and Biochemistry, Bradley University, 1501 West Bradley Avenue, Peoria, IL, 61625, USA.

USDA, Agricultural Research Service, National Center for Agricultural Utilization Research, Mycotoxin Prevention and Applied Microbiology Research Unit, 1815 N University St., Peoria, IL, 61604, USA.

出版信息

Fungal Biol. 2023 Mar;127(3):918-926. doi: 10.1016/j.funbio.2023.01.006. Epub 2023 Jan 21.

Abstract

The disaccharide trehalose has long been recognized for its role as a stress solute, but in recent years some of the protective effects previously ascribed to trehalose have been suggested to arise from a function of the trehalose biosynthesis enzyme trehalose-6-phosphate (T6P) synthase that is distinct from its catalytic activity. In this study, we use the maize pathogenic fungus Fusarium verticillioides as a model to explore the relative contributions of trehalose itself and a putative secondary function of T6P synthase in protection against stress as well as to understand why, as shown in a previous study, deletion of the TPS1 gene coding for T6P synthase reduces pathogenicity against maize. We report that a TPS1-deletion mutant of F. verticillioides is compromised in its ability to withstand exposure to oxidative stress meant to simulate the oxidative burst phase of maize defense and experiences more ROS-induced lipid damage than the wild-type strain. Eliminating T6P synthase expression also reduces resistance to desiccation, but not resistance to phenolic acids. Expression of catalytically-inactive T6P synthase in the TPS1-deletion mutant leads to a partial rescue of the oxidative and desiccation stress-sensitive phenotypes, suggesting the importance of a T6P synthase function that is independent of its role in trehalose synthesis.

摘要

二糖海藻糖长期以来一直被认为是一种应激溶质,但近年来,一些先前归因于海藻糖的保护作用被认为源自海藻糖合成酶海藻糖-6-磷酸(T6P)合酶的一种不同于其催化活性的功能。在这项研究中,我们使用玉米病原真菌轮枝镰孢作为模型,探讨了海藻糖本身和 T6P 合酶的潜在次要功能在应激保护中的相对贡献,以及为什么如前一项研究所示,删除编码 T6P 合酶的 TPS1 基因会降低对玉米的致病性。我们报告说,F. verticillioides 的 TPS1 缺失突变体在承受旨在模拟玉米防御中氧化爆发阶段的氧化应激的能力方面受到损害,并且比野生型菌株经历更多的 ROS 诱导的脂质损伤。消除 T6P 合酶表达也会降低对干燥的抵抗力,但不会降低对酚酸的抵抗力。在 TPS1 缺失突变体中表达无催化活性的 T6P 合酶会导致对氧化和干燥应激敏感表型的部分挽救,这表明 T6P 合酶的功能独立于其在海藻糖合成中的作用的重要性。

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