海藻糖
ATP合酶
生物
生物化学
突变体
氧化应激
干燥
海藻糖酶
酶
微生物学
基因
植物
作者
Sarah D. McMillan,Nicole R. Oberlie,Haley A. Hardtke,Miah M. Montes,Daren W. Brown,Kristi L. McQuade
出处
期刊:Fungal Biology
[Elsevier]
日期:2023-03-01
卷期号:127 (3): 918-926
被引量:4
标识
DOI:10.1016/j.funbio.2023.01.006
摘要
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.
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