Department of Biotechnology, The University of Tokyo, Tokyo, Japan.
Collaborative Research Institute for Innovative Microbiology, The University of Tokyo, Tokyo, Japan.
Mol Microbiol. 2020 May;113(5):964-982. doi: 10.1111/mmi.14463. Epub 2020 Feb 11.
Septum formation in fungi is equivalent to cytokinesis. It differs mechanistically in filamentous ascomycetes (Pezizomycotina) from that of ascomycete yeasts by the retention of a central septal pore in the former group. However, septum formation in both groups is accomplished by contractile actin ring (CAR) assembly and constriction. The specific components regulating septal pore organization during septum formation are poorly understood. In this study, a novel Pezizomycotina-specific actin regulatory protein GlpA containing gelsolin domains was identified using bioinformatics. A glpA deletion mutant exhibited increased distances between septa, abnormal septum morphology and defective regulation of septal pore closure. In glpA deletion mutant hyphae, overaccumulation of actin filament (F-actin) was observed, and the CAR was abnormal with improper assembly and failure in constriction. In wild-type cells, GlpA was found at the septum formation site similarly to the CAR. The N-terminal 329 residues of GlpA are required for its localization to the septum formation site and essential for proper septum formation, while its C-terminal gelsolin domains are required for the regular CAR dynamics during septum formation. Finally, in this study we elucidated a novel Pezizomycotina-specific actin modulating component, which participates in septum formation by regulating the CAR dynamics.
真菌的隔膜形成相当于胞质分裂。在丝状子囊菌(Pezizomycotina)中,它在机制上与子囊菌酵母不同,前者保留了中央隔膜孔。然而,这两个群体的隔膜形成都是通过收缩性肌动蛋白环(CAR)组装和收缩来完成的。在隔膜形成过程中调节隔膜孔组织的特定成分知之甚少。在这项研究中,使用生物信息学鉴定了一种新型的 Pezizomycotina 特异性肌动蛋白调节蛋白 GlpA,它含有凝胶蛋白结构域。glpA 缺失突变体表现出隔膜之间距离增加、隔膜形态异常和隔膜孔关闭调节缺陷。在 glpA 缺失突变体菌丝中,观察到肌动蛋白丝(F-肌动蛋白)的过度积累,CAR 异常,组装不当且无法收缩。在野生型细胞中,GlpA 与 CAR 一样出现在隔膜形成部位。GlpA 的 N 端 329 个残基是其定位到隔膜形成部位所必需的,也是正确形成隔膜所必需的,而其 C 端凝胶蛋白结构域是隔膜形成过程中 CAR 正常动力学所必需的。最后,在这项研究中,我们阐明了一种新型的 Pezizomycotina 特异性肌动蛋白调节成分,它通过调节 CAR 动力学参与隔膜形成。