Fiche publication
Date publication
juin 2026
Journal
Journal of molecular biology
Auteurs
Membres identifiés du Cancéropôle Est :
Dr KLAHOLZ Bruno
Tous les auteurs :
Dos Reis Saladino GC, Ciol H, Mendonça DC, Furtado AA, Pereira HD, Klaholz BP, Ulian Araujo AP, Garratt RC
Lien Pubmed
Résumé
Septins are cytoskeletal proteins that assemble into hetero-oligomeric complexes which polymerize into filaments to regulate many cellular processes, including cytokinesis and membrane remodelling. In Caenorhabditis elegans, the core septin complex is a tetramer composed of two copies each of two different subunits, UNC-59 and UNC-61. Historically, low-resolution models suggested a subunit order of UNC-59-UNC-61-UNC-61-UNC-59 for the tetramer. However, this arrangement contradicted the positional conservation of septins observed in other species. Using cryo-EM, we obtained a structure for the tetramer with a global resolution of 2.7 Å, definitively establishing the subunit order to be UNC-61-UNC-59-UNC-59-UNC-61. This places UNC-59 at the centre of the particle where it forms a homodimeric G-interface, confirming it to be a positional ortholog of human SEPT7. This arrangement is further supported by mutational/biophysical analyses. Despite the stability of the tetramer, the complex failed to polymerize into filaments in vitro, which we attribute to the structural instability of the terminal UNC-61 G-interfaces. Our results suggest that post-translational modifications or specific cellular factors may be required to initiate higher-order assembly in C. elegans. Furthermore, our structure reveals that while UNC-59 possesses key characteristics of the SEPT7 group, it also features unique structural adaptations that may be related to the unique arrangement of the C. elegans complex. We demonstrate that the previous misidentification of the subunit order within the tetramer likely stemmed from N-terminal domain swapping, reinforcing the importance of high-resolution structural studies for understanding the evolutionary history and the diversity of septins.
Mots clés
C. elegans, Septins, cryo-electron microscopy, protein-protein interfaces
Référence
J Mol Biol. 2026 06 23;:169915