Current affiliation: Université Côte d'Azur, INRAE, CNRS, ISA, Sophia Antipolis, France; email:
Laboratory of Phytopathology, Wageningen University and Research, Wageningen, The Netherlands; email:
Annu Rev Microbiol. 2024 Nov;78(1):493-512. doi: 10.1146/annurev-micro-032421-121423. Epub 2024 Nov 7.
Filamentous plant pathogens threaten global food security and ecosystem resilience. In recent decades, significant strides have been made in deciphering the molecular basis of plant-pathogen interactions, especially the interplay between pathogens' molecular weaponry and hosts' defense machinery. Stemming from interdisciplinary investigations into the infection cell biology of filamentous plant pathogens, recent breakthrough discoveries have provided a new impetus to the field. These advances include the biophysical characterization of a novel invasion mechanism (i.e., naifu invasion) and the unraveling of novel effector secretion routes. On the plant side, progress includes the identification of components of cellular networks involved in the uptake of intracellular effectors. This exciting body of research underscores the pivotal role of logistics management by the pathogen throughout the infection cycle, encompassing the precolonization stages up to tissue invasion. More insight into these logistics opens new avenues for developing environmentally friendly crop protection strategies in an era marked by an imperative to reduce the use of agrochemicals.
丝状植物病原体威胁着全球粮食安全和生态系统的恢复力。在最近几十年中,人们在破译植物-病原体相互作用的分子基础方面取得了重大进展,特别是在病原体的分子武器和宿主防御机制之间的相互作用方面。源于对丝状植物病原体感染细胞生物学的跨学科研究,最近的突破性发现为该领域提供了新的动力。这些进展包括对一种新型入侵机制(即奈福入侵)的生物物理特性的描述,以及对新型效应物分泌途径的揭示。在植物方面的进展包括鉴定参与细胞内效应物摄取的细胞网络组件。这一令人兴奋的研究领域强调了病原体在整个感染周期中物流管理的关键作用,包括定植前阶段到组织入侵。对这些物流的更多了解为在减少农用化学品使用的时代开发环保型作物保护策略开辟了新的途径。