bioRxiv · 10.1101/569871
Revised subunit order of mammalian septin complexes explains their in vitro polymerization properties
Abstract
Septins are conserved GTP-binding cytoskeletal proteins that polymerize into filaments by end-to-end joining of heterooligomeric complexes. In human cells, both hexamers and octamers exist, and crystallography studies predicted the order of the hexamers to be SEPT7-SEPT6-SEPT2-SEPT2-SEPT6-SEPT7, while octamers are thought to have the same core, but with SEPT9 at the ends. However, based on this septin organization, octamers and hexamers would not be expected to co-polymerize due to incompatible ends. Here we isolated hexamers and octamers of specific composition from human cells and show that hexamers and octamers polymerize individually and, surprisingly, with each other. Binding of Borg3 results in distinctive clustering of each filament type. Moreover, we show that the organization of hexameric and octameric complexes is inverted compared to its original prediction. This revised septin organization is congruent with the organization and behavior of yeast septins suggesting that their properties are more conserved than was previously thought.
Source connections
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Soroor, F., Kim, M. S., Palander, O., Balachandran, Y., Collins, R., Benlekbir, S., Rubinstein, J., Trimble, W. S.. 2019-03-07. Revised subunit order of mammalian septin complexes explains their in vitro polymerization properties. https://doi.org/10.1101/569871
Cite the original work for its findings. Save a collection to share your selection of sources.