Department of Biochemistry and Molecular Biology, Drexel University, Philadelphia, Pennsylvania, USA.
VCU Health System, Richmond, Virginia, USA.
Cytoskeleton (Hoboken). 2020 Nov;77(11):485-499. doi: 10.1002/cm.21643. Epub 2020 Nov 23.
The septins are filament-forming proteins found in diverse eukaryotes from fungi to vertebrates, with roles in cytokinesis, shaping of membranes and modifying cytoskeletal organization. These GTPases assemble into rod-shaped soluble hetero-hexamers and hetero-octamers in mammals, which polymerize into filaments and higher order structures. While the cell biology and pathobiology of septins are advancing rapidly, mechanistic study of the mammalian septins is limited by a lack of recombinant hetero-octamer materials. We describe here the production and characterization of a recombinant mammalian septin hetero-octamer of defined stoichiometry, the SEPT2/SEPT6/SEPT7/SEPT3 complex. Using a fluorescent protein fusion to the complex, we observed filaments assembled from this complex. In addition, we used this novel tool to resolve recent questions regarding the organization of the soluble septin complex. Biochemical characterization of a SEPT3 truncation that disrupts SEPT3-SEPT3 interactions is consistent with SEPT3 occupying a central position in the complex while the SEPT2 subunits are at the ends of the rod-shaped octameric complexes. Consistent with SEPT2 being on the complex ends, we find that our purified SEPT2/SEPT6/SEPT7/SEPT3 hetero-octamer copolymerizes into mixed filaments with separately purified SEPT2/SEPT6/SEPT7 hetero-hexamer. We expect this new recombinant production approach to lay essential groundwork for future studies into mammalian septin mechanism and function.
septins 是一种存在于从真菌到脊椎动物等各种真核生物中的纤维形成蛋白,它们在细胞分裂、膜的形成和细胞骨架组织的修饰中发挥作用。这些 GTPases 在哺乳动物中组装成棒状可溶性异六聚体和异八聚体,然后聚合形成纤维和更高阶结构。尽管 septins 的细胞生物学和病理生物学正在迅速发展,但哺乳动物 septins 的机制研究受到缺乏重组异八聚体材料的限制。我们在这里描述了一种具有明确化学计量比的重组哺乳动物 septin 异八聚体,即 SEPT2/SEPT6/SEPT7/SEPT3 复合物的生产和特性。使用该复合物的荧光蛋白融合,我们观察到该复合物组装成的纤维。此外,我们还使用这种新工具解决了关于可溶性 septin 复合物组织的最新问题。对破坏 SEPT3-SEPT3 相互作用的 SEPT3 截断的生化特征分析与 SEPT3 占据复合物中心位置一致,而 SEPT2 亚基位于棒状八聚体复合物的末端。与 SEPT2 位于复合物末端一致,我们发现我们纯化的 SEPT2/SEPT6/SEPT7/SEPT3 异八聚体与单独纯化的 SEPT2/SEPT6/SEPT7 异六聚体共聚合形成混合纤维。我们期望这种新的重组生产方法为未来研究哺乳动物 septin 的机制和功能奠定重要基础。