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酵母化学遗传筛选鉴定新型植物半胱氨酸氧化酶抑制剂。

Identification of novel plant cysteine oxidase inhibitors from a yeast chemical genetic screen.

机构信息

Plantlab, Center of Plant Sciences, Scuola Superiore Sant'Anna, Pisa, Italy.

Department of Chemistry, University of Oxford, Oxford, UK.

出版信息

J Biol Chem. 2023 Dec;299(12):105366. doi: 10.1016/j.jbc.2023.105366. Epub 2023 Oct 19.

DOI:10.1016/j.jbc.2023.105366
PMID:37863264
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC10692734/
Abstract

Hypoxic responses in plants involve Plant Cysteine Oxidases (PCOs). They catalyze the N-terminal cysteine oxidation of Ethylene Response Factors VII (ERF-VII) in an oxygen-dependent manner, leading to their degradation via the cysteine N-degron pathway (Cys-NDP) in normoxia. In hypoxia, PCO activity drops, leading to the stabilization of ERF-VIIs and subsequent hypoxic gene upregulation. Thus far, no chemicals have been described to specifically inhibit PCO enzymes. In this work, we devised an in vivo pipeline to discover Cys-NDP effector molecules. Budding yeast expressing AtPCO4 and plant-based ERF-VII reporters was deployed to screen a library of natural-like chemical scaffolds and was further combined with an Arabidopsis Cys-NDP reporter line. This strategy allowed us to identify three PCO inhibitors, two of which were shown to affect PCO activity in vitro. Application of these molecules to Arabidopsis seedlings led to an increase in ERF-VII stability, induction of anaerobic gene expression, and improvement of tolerance to anoxia. By combining a high-throughput heterologous platform and the plant model Arabidopsis, our synthetic pipeline provides a versatile system to study how the Cys-NDP is modulated. Its first application here led to the discovery of at least two hypoxia-mimicking molecules with the potential to impact plant tolerance to low oxygen stress.

摘要

植物的低氧响应涉及植物半胱氨酸氧化酶(PCO)。它们以氧依赖的方式催化乙烯响应因子 VII(ERF-VII)N 端半胱氨酸的氧化,导致其在常氧条件下通过半胱氨酸 N 去基团途径(Cys-NDP)降解。在缺氧条件下,PCO 活性下降,导致 ERF-VII 的稳定,随后缺氧基因的上调。到目前为止,还没有描述特定抑制 PCO 酶的化学物质。在这项工作中,我们设计了一个体内流水线来发现 Cys-NDP 效应分子。表达 AtPCO4 和基于植物的 ERF-VII 报告器的芽殖酵母被用于筛选天然化学支架库,并与拟南芥 Cys-NDP 报告器系进一步组合。该策略使我们能够识别出三种 PCO 抑制剂,其中两种在体外显示出影响 PCO 活性的作用。将这些分子应用于拟南芥幼苗会导致 ERF-VII 稳定性增加、厌氧基因表达诱导以及对缺氧的耐受性提高。通过结合高通量异源平台和植物模型拟南芥,我们的合成流水线提供了一个多功能系统来研究 Cys-NDP 是如何被调节的。在这里的首次应用导致发现了至少两种模拟低氧的分子,它们有可能影响植物对低氧胁迫的耐受性。

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