Characterization of the trimeric TOM complex by HS-AFM single-molecule analysis
The translocase of the outer mitochondrial membrane (TOM) complex is the main entry gate for mitochondrial proteins. Approximately 99 % of mitochondrial proteins are synthesized as precursor proteins (preproteins) in the cytosol and subsequently translocated into mitochondria through the TOM complex. The TOM complex exists in a dynamic equilibrium among multiple assembly states through spatial rearrangements of its subunits. The recent cryo-electron microscopy (cryo-EM) studies revealed near-atomic structures of the TOM core dimer, whereas previous biochemical studies indicated the TOM complex functions as a trimer in intact mitochondria. However, the relationship between the core dimer and the functional trimer remains unclear. In the present study, we analyzed the dynamics of the TOM complex using high-speed atomic force microscopy (HS-AFM) to investigate the assembly states and conformation transitions of the TOM complexes. We demonstrated that purified yeast TOM complexes predominantly adopt a trimeric organization but dynamically dissociate into dimeric and monomeric states during HS-AFM observation. The trimeric particles observed by HS-AFM exhibited spherical molecular shapes consistent with a trimeric structural model proposed from previous crosslinking analyses. In contrast, the dissociated dimeric particles closely resembled the dimensions of the TOM core-dimer structures determined by cryo-EM. Furthermore, HS-AFM analyses provided insight into the spatial arrangement of the Tom20 receptor, consistent with previous models of the trimeric TOM complex. These observations enabled characterization of the trimeric TOM complex in vitro and provide a foundation for future structural and functional analyses of TOM complex assembly. Significance statementThe translocase of the mitochondrial outer membrane (TOM) complex is the universal entry gate for almost all mitochondrial proteins, yet its native organization has remained elusive. By combining high-speed atomic force microscopy with cryo-electron microscopy, we provide evidence that the yeast TOM complex predominantly adopts a trimeric assembly with three protein-conducting channels, rather than the dimeric architecture proposed by previous structural studies. Furthermore, single-molecule imaging directly visualized interactions with mitochondrial precursor proteins and receptor-specific antibodies, enabling the experimental identification of receptor subunits within the trimeric TOM complex. Together, these findings uncover previously unrecognized structural and dynamic features of the TOM complex and provide a framework for understanding the molecular mechanism of mitochondrial protein import.