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真菌效应物在植物激素信号交汇点。

Fungal effectors at the crossroads of phytohormone signaling.

机构信息

Temasek Life Sciences Laboratory and Department of Biological Sciences, 1 Research Link, National University of Singapore, Singapore.

Temasek Life Sciences Laboratory and Department of Biological Sciences, 1 Research Link, National University of Singapore, Singapore; School of Biological Sciences, Nanyang Technological University, Singapore.

出版信息

Curr Opin Microbiol. 2018 Dec;46:1-6. doi: 10.1016/j.mib.2018.01.006. Epub 2018 Feb 13.

DOI:10.1016/j.mib.2018.01.006
PMID:29452844
Abstract

Phytohormone networks are crucial for maintaining the delicate balance between growth and biotic stress responses in plants. Jasmonic acid, salicylic acid, ethylene, and the associated signaling crosstalk are important for pathogen defense; whereas gibberellin and cytokinin function in growth and development in plants. Plant pathogenic fungi have evolved remarkable strategies to manipulate and/or hijack such phytohormone signaling cascades for their own benefit, thus leading to susceptibility and disease in host plants. Interestingly, these hormones are also targeted by fungal endosymbionts and mutualists during beneficial interactions with plants. We highlight current advances in our understanding of the role of fungal effectors in such antagonistic manipulation of phytohormones during pathogenic as well as symbiotic association with plant hosts. In addition to the aforementioned effector-based control, certain phytohormone mimics have recently emerged as a powerful molecular language in fungal manipulation of defense responses and innate immunity in plants.

摘要

植物激素网络对于维持植物生长和生物胁迫反应之间的微妙平衡至关重要。茉莉酸、水杨酸、乙烯及其相关信号转导交叉对于病原体防御很重要;而赤霉素和细胞分裂素在植物的生长和发育中起作用。植物病原真菌已经进化出了非凡的策略,来操纵和/或劫持这些植物激素信号级联,以谋取自身利益,从而导致宿主植物的易感性和疾病。有趣的是,这些激素也被真菌内共生体和共生体在与植物宿主进行有益相互作用时作为目标。我们强调了目前对真菌效应物在致病性和共生性与植物宿主关联过程中对植物激素的这种拮抗作用的理解的最新进展。除了上述基于效应物的控制之外,某些植物激素类似物最近作为真菌操纵植物防御反应和先天免疫的强大分子语言出现。

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