Fedoryshchak Roman O, Ocasio Cory A, Strutton Benjamin, Mattocks Jo, Corran Andrew J, Tate Edward W
Department of Chemistry, Imperial College London, Molecular Sciences Research Hub Wood Lane London W12 0BZ UK
The Francis Crick Institute 1 Midland Rd London NW1 1AT UK
RSC Chem Biol. 2020 May 13;1(2):68-78. doi: 10.1039/d0cb00020e. eCollection 2020 Jun 1.
is the causative agent of blotch (STB), which costs billions of dollars annually to major wheat-producing countries in terms of both fungicide use and crop loss. Agricultural pathogenic fungi have acquired resistance to most commercially available fungicide classes, and the rate of discovery and development of new fungicides has stalled, demanding new approaches and insights. Here we investigate a potential mechanism of targeting an important wheat pathogen inhibition of -myristoyltransferase (NMT). We characterize NMT biochemically for the first time, profile the myristoylated proteome and identify and validate the first NMT inhibitors. Proteomic investigation of the downstream effects of NMT inhibition identified an unusual and novel mechanism of defense against chemical toxicity in through the application of comparative bioinformatics to deconvolute function from the previously largely unannotated proteome. Research into novel fungicidal modes-of-action is essential to satisfy an urgent unmet need for novel fungicide targets, and we anticipate that this study will serve as a useful proteomics and bioinformatics resource for researchers studying .
是斑点病(STB)的病原体,就杀菌剂使用和作物损失而言,每年给主要小麦生产国造成数十亿美元的损失。农业致病真菌已对大多数市售杀菌剂类别产生抗性,并且新杀菌剂的发现和开发速度已经停滞,这需要新的方法和见解。在这里,我们研究了一种靶向重要小麦病原体——抑制N-肉豆蔻酰转移酶(NMT)的潜在机制。我们首次对NMT进行了生化表征,分析了肉豆蔻酰化蛋白质组,并鉴定和验证了首批NMT抑制剂。对NMT抑制的下游效应进行蛋白质组学研究,通过应用比较生物信息学从以前基本未注释的蛋白质组中解卷积功能,确定了一种针对化学毒性的不同寻常且新颖的防御机制。研究新型杀真菌作用模式对于满足对新型杀菌剂靶标的迫切未满足需求至关重要,并且我们预计这项研究将为研究该病原体的研究人员提供有用的蛋白质组学和生物信息学资源。