sssmk1 - sssom1 - sssmsb2通路调控菌核菌感染缓冲层形成和致病性

IF 4.8 1区 农林科学 Q1 PLANT SCIENCES
Wenli Jiao, Dongmeng Ma, Hongyu Sun, Yalan Li, Xingming Lv, Qi Zuo, Sirui Liu, Hongyu Pan
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引用次数: 0

摘要

菌核菌(Sclerotinia sclerotiorum)在重要的经济植物上引起菌核菌茎腐病,对全球粮食安全构成严重威胁。据报道,宿主诱导的基因沉默(HIGS)是一种很有前途的预防菌丝体感染的策略;然而,高效的HIGS基因靶点是有限的。在感染过程中,跨膜蛋白感知细胞表面信号,诱导感染缓冲分化。细胞内信号转导的调控途径和这些跨膜蛋白的表达模式尚不清楚。在这里,我们证明了转录因子SsSom1与丝裂原活化蛋白激酶SsSmk1相互作用。SsSom1的缺失消除了菌核的形成,调节了感染垫的发育,降低了菌核菌的致病性。生化分析表明,SsSom1可以结合SsMSB2的启动子,SsMSB2蛋白与SsSte50相互作用激活SsSmk1-MAPK通路,从而驱动菌丝体感染缓冲分化。此外,ChIP-qPCR分析表明,在SsSmk1存在的情况下,SsSom1在感染缓冲诱导条件下显著增强了SsMSB2的转录活性。此外,我们将靶向SsSOM1的HIGS构建物渗透到benthamiana中,降低了S. sclerotiorum的毒力。综上所述,本研究阐明了sssmk1 -SsSom1- sssmsb2调控菌核菌感染缓冲层的形成和致病性,确定SsSom1是控制菌核菌茎腐病的潜在HIGS靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The SsSmk1-SsSom1-SsMsb2 Pathway Regulates Infection Cushion Formation and Pathogenicity in Sclerotinia sclerotiorum.

Sclerotinia sclerotiorum causes Sclerotinia stem rot on economically important plants, posing serious threats to food security worldwide. Host-induced gene silencing (HIGS) was reported as a promising strategy for preventing infections caused by S. sclerotiorum; however, highly effective HIGS gene targets are limited. During infection, transmembrane proteins sense cell surface signals to induce infection cushion differentiation. The regulatory pathways governing intracellular signal transduction and the expression patterns of these transmembrane proteins remain unclear. Here, we demonstrated that the transcription factor SsSom1 interacted with the mitogen-activated protein kinase SsSmk1. Deletion of SsSom1 abolished sclerotia formation, regulated infection cushions development and reduced pathogenicity of S. sclerotiorum. Biochemical analysis demonstrated that SsSom1 could bind to the promoter of SsMSB2 and the SsMsb2 protein interacts with SsSte50 to activate the SsSmk1-MAPK pathway, thereby driving infection cushion differentiation of S. sclerotiorum. Furthermore, ChIP-qPCR analysis demonstrated that in the presence of SsSmk1, SsSom1 significantly enhanced the transcriptional activity of SsMSB2 under infection cushion-induced conditions. Moreover, we infiltrated HIGS constructs targeting SsSOM1 in Nicotiana benthamiana, which reduced the virulence of S. sclerotiorum. Taken together, this study elucidated the SsSmk1-SsSom1-SsMsb2 regulated infection cushions formation and the pathogenicity of S. sclerotiorum, identifying SsSom1 as a potential HIGS target for Sclerotinia stem rot control.

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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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