Zhang Sha, Singh Davinder, Zhu Yi-Hua, Zhang Katherine J, Melero Alejandro, Martin Sophie G, Wu Jian-Qiu
Department of Molecular Genetics, The Ohio State University, Columbus, OH 43210, USA.
Department of Fundamental Microbiology, University of Lausanne, Switzerland.
bioRxiv. 2025 May 14:2025.05.13.653810. doi: 10.1101/2025.05.13.653810.
Cytokinesis requires precise coordination of contractile-ring constriction, vesicle trafficking and fusion to the plasma membrane, and extracellular matrix assembly/remodeling at the cleavage furrow to ensure faithful cell division and maintain cell integrity. These processes and proteins involved are broadly conserved across eukaryotes, yet molecular mechanisms controlling the spatiotemporal pathways of membrane trafficking remain poorly understood. Here, using fission yeast genetics, microscopy, and in vitro binding assays, we identify the conserved module including the Munc13 protein Ync13, F-BAR protein Rga7, and coiled-coil protein Rng10 to be critical for precise and selective vesicle targeting during cytokinesis. The module specifically recruit the TRAPP-II but not exocyst complex to tether vesicles containing the glucan synthases Bgs4 and Ags1 along the cleavage furrow. Ync13 subsequently interacts with the SM protein Sec1 for vesicle fusion. Mutations in this pathway disrupt septum integrity and lead to cell lysis. Our work provides key insights into how membrane trafficking is tightly controlled to maintain cell integrity during cytokinesis.
胞质分裂需要收缩环缢缩、囊泡运输与融合至质膜以及在分裂沟处进行细胞外基质组装/重塑的精确协调,以确保准确的细胞分裂并维持细胞完整性。这些过程及相关蛋白质在真核生物中广泛保守,但控制膜运输时空途径的分子机制仍知之甚少。在此,我们利用裂殖酵母遗传学、显微镜技术和体外结合试验,鉴定出包括Munc13蛋白Ync13、F-BAR蛋白Rga7和卷曲螺旋蛋白Rng10的保守模块,该模块对于胞质分裂期间精确且选择性的囊泡靶向至关重要。该模块特异性招募TRAPP-II而非外泌体复合物,以沿着分裂沟拴系含有葡聚糖合酶Bgs4和Ags1的囊泡。Ync13随后与SM蛋白Sec1相互作用以实现囊泡融合。该途径中的突变会破坏隔膜完整性并导致细胞裂解。我们的工作为胞质分裂期间如何严格控制膜运输以维持细胞完整性提供了关键见解。