不同的遗传机制使丁香假单胞菌能够快速克服效应触发免疫。

IF 4.8 1区 农林科学 Q1 PLANT SCIENCES
Jacy Newfeld, Elise Bull, Erka Shata, Mateja Perc, Rui Xuan Tang, Marcus M Dillon
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引用次数: 0

摘要

植物细菌性病原体对全球作物产量构成严重威胁,并造成广泛的粮食不安全。限制病原体在关键作物上增殖的一种常见方法是通过基因工程培育含有抗性基因的品种,这些抗性基因能够识别和响应关键的细菌毒力因子,如III型分泌效应物。不幸的是,这些抗性障碍往往在短短几个季节内被病原体进化所克服。在这项研究中,我们探索了通过利用两种丁香假单胞菌来克服植物抗性的进化机制。在模型宿主拟南芥上引起疾病的能力不同的黄斑菌菌株。我们首先描述了使丁香P. pv适应的分子基础。maculicola PmaES4326通过直接修饰hopAR1效应物来克服rps5介导的抗性。然后我们表明,通过植物进化,最初的非致病性菌株紫丁香假单胞菌pv。maculicola PmaYM7930可以通过不涉及hopAR1直接修饰的低频突变快速适应克服rps5介导的抗性。这一结果尤其令人惊讶,因为hopAR1已知与能够增加进化可塑性的移动遗传元件有关。丁香假单胞菌在不直接修饰hopAR1的情况下克服效应物触发免疫的快速能力表明,使病原体克服宿主抗性的遗传机制比目前认识到的更为多样化。这一结果对开发更稳定的抗病作物具有重要意义,可以抵抗各种形式的病原体进化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Diverse Genetic Mechanisms Enable Pseudomonas syringae to Rapidly Overcome Effector-Triggered Immunity.

Bacterial plant pathogens pose a serious threat to worldwide crop yields and cause widespread food insecurity. One common approach to limit pathogen proliferation on critical crops is to genetically engineer cultivars that harbour resistance genes capable of recognising and responding to critical bacterial virulence factors like type III secreted effectors. Unfortunately, these resistance barriers are often overcome by pathogen evolution within just a few seasons. In this study, we explore the evolutionary mechanisms that enable pathogens to overcome plant resistance by leveraging two Pseudomonas syringae pv. maculicola strains that differ in their ability to cause disease on the model host Arabidopsis thaliana. We first characterise the molecular basis of the adaptation that enabled the P. syringae pv. maculicola PmaES4326 to overcome rps5-mediated resistance through a direct modification to its hopAR1 effector. We then show that through in planta evolution, the initially nonpathogenic strain P. syringae pv. maculicola PmaYM7930 can rapidly adapt to overcome rps5-mediated resistance via low-frequency mutations that do not involve direct modifications to hopAR1. This result was especially surprising because hopAR1 is known to be associated with mobile genetic elements that enable increased evolutionary plasticity. The rapid ability of P. syringae to overcome effector-triggered immunity without direct modifications to hopAR1 reveals that the genetic mechanisms enabling pathogens to overcome host resistance are more diverse than is currently recognised. This result has important implications for the development of more stably resistant crops that can resist various forms of pathogen evolution.

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来源期刊
Molecular plant pathology
Molecular plant pathology 生物-植物科学
CiteScore
9.40
自引率
4.10%
发文量
120
审稿时长
6-12 weeks
期刊介绍: Molecular Plant Pathology is now an open access journal. Authors pay an article processing charge to publish in the journal and all articles will be freely available to anyone. BSPP members will be granted a 20% discount on article charges. The Editorial focus and policy of the journal has not be changed and the editorial team will continue to apply the same rigorous standards of peer review and acceptance criteria.
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