Institute of Biotechnology, Key Laboratory of Molecular Biology of Crop Pathogens and Insects, Zhejiang University, 866 Yuhangtang Road, Hangzhou, 310058, China.
Ningbo Academy of Agricultural Sciences, Ningbo, 315040, China.
Environ Microbiol. 2017 Dec;19(12):5040-5059. doi: 10.1111/1462-2920.13968. Epub 2017 Nov 24.
Hsp70 proteins play important roles in protein folding in the budding yeast, but their functions in pathogenic fungi are largely unknown. Here, we found that Fusarium graminearum Hsp70 proteins FgSsb, FgSsz and their cochaperone FgZuo formed a complex. This complex was required for microtubule morphology, vacuole fusion and endocytosis. More importantly, the β2-tubulin FgTub2 and SNARE protein FgVam7 were identified as targeting proteins of this complex. We further found that the complex FgSsb-FgZuo-FgSsz controlled sensitivity of F. graminearum to the antimicrotubule drug carbendazim and cold stress via regulating the folding of FgTub2. Moreover, this complex assisted the folding of FgVam7, subsequently modulated vacuole fusion and responses to heavy metal, osmotic and oxidative stresses. In addition, the deletion of this complex led to dramatically decreased deoxynivalenol biosynthesis. This study uncovers a novel regulating mechanism of Hsp70 in multiple stress responses in a filamentous fungus.
热休克蛋白 70 家族蛋白在出芽酵母的蛋白质折叠中发挥着重要作用,但它们在病原真菌中的功能在很大程度上是未知的。在这里,我们发现禾谷镰刀菌 Hsp70 蛋白 FgSsb、FgSsz 及其共伴侣 FgZuo 形成了一个复合物。该复合物对于微管形态、液泡融合和内吞作用是必需的。更重要的是,β2-微管蛋白 FgTub2 和 SNARE 蛋白 FgVam7 被鉴定为该复合物的靶蛋白。我们进一步发现,复合物 FgSsb-FgZuo-FgSsz 通过调节 FgTub2 的折叠来控制禾谷镰刀菌对微管药物多菌灵和冷应激的敏感性。此外,该复合物协助 FgVam7 的折叠,随后调节液泡融合以及对重金属、渗透和氧化应激的反应。此外,该复合物的缺失导致脱氧雪腐镰刀菌烯醇生物合成显著减少。这项研究揭示了一种新型的 Hsp70 在丝状真菌中多种应激反应中的调节机制。