College of Agricultural and Food Science, Zhejiang A & F University, Lin'an, China.
MOE Laboratory of Biosystems Homeostasis & Protection, Institute of Microbiology, College of Life Sciences, Zhejiang University, Hangzhou, China.
Cell Microbiol. 2019 Dec;21(12):e13100. doi: 10.1111/cmi.13100. Epub 2019 Aug 20.
Wsc1I homologues featuring both an N-terminal DUF1996 (domain of unknown function 1996) and a C-terminal WSC (cell wall stress-responsive component) domain exist in filamentous fungi but have never been functionally characterized. Here, Wsc1I is shown to localize in the vacuoles and cell wall/membrane of the insect mycopathogen Beauveria bassiana and hence linked to cell membrane- and vacuole-related cellular events. In B. bassiana, deletion of Wsc1I resulted in marked increases of hyphal and conidial sensitivities to hyperosmotic agents, oxidants, cell wall perturbing chemicals, and metal cations (Cu , Zn , Fe , and Mg ) despite slight impact on normal growth and conidiation. Conidia produced by the deletion mutant showed not only reduced tolerance to both 45°C heat and UVB irradiation but also attenuated virulence to a susceptible insect through normal cuticle infection or cuticle-bypassing infection. Importantly, phosphorylation of the mitogen-activated protein kinase Hog1 was largely attenuated or nearly abolished in the Wsc1I-free cells triggered with hyperosmotic, oxidative, or cell wall perturbing stress. All changes were well restored by targeted gene complementation. Our findings highlight a novel role of Wsc1I in sensing multiple stress cues upstream of the Hog1 signalling pathway and its pleiotropic effects in B. bassiana.
Wsc1I 同源物具有 N 端 DUF1996(功能未知域 1996)和 C 端 WSC(细胞壁应激反应成分)结构域,存在于丝状真菌中,但尚未进行功能表征。在这里,Wsc1I 被证明定位于昆虫病原白僵菌的液泡和细胞壁/膜中,因此与细胞膜和液泡相关的细胞事件有关。在白僵菌中,尽管对正常生长和产孢的影响很小,但 Wsc1I 的缺失导致菌丝和分生孢子对高渗剂、氧化剂、细胞壁扰动化学品和金属阳离子(Cu、Zn、Fe 和 Mg)的敏感性显著增加。缺失突变体产生的分生孢子不仅对 45°C 热和 UVB 照射的耐受性降低,而且通过正常的表皮感染或表皮绕过感染对易感昆虫的毒力也减弱。重要的是,在触发高渗、氧化或细胞壁扰动应激时,Hog1 丝裂原活化蛋白激酶的磷酸化在没有 Wsc1I 的细胞中被大大减弱或几乎被消除。所有变化都通过靶向基因互补得到了很好的恢复。我们的发现强调了 Wsc1I 在感应 Hog1 信号通路上游的多种应激信号中的新作用及其在白僵菌中的多效性效应。