Key result
Structural analysis of talin reveals a five-helix bundle and dimerization helix essential for F-actin binding.
The study elucidates the structural basis of how talin's C-terminal domain dimerizes and binds to F-actin, providing insights into integrin-cytoskeleton coupling.
Offers atomic details of talin-actin binding; leaves open implications for cardiac integrin signaling and requires in vivo validation.
Talin is a large dimeric protein that couples integrins to cytoskeletal actin. Here, we report the structure of the C-terminal actin-binding domain of talin, the core of which is a five-helix bundle linked to a C-terminal helix responsible for dimerisation. The NMR structure of the bundle reveals a conserved surface-exposed hydrophobic patch surrounded by positively charged groups. We have mapped the actin-binding site to this surface and shown that helix 1 on the opposite side of the bundle negatively regulates actin binding. The crystal structure of the dimerisation helix reveals an antiparallel coiled-coil with conserved residues clustered on the solvent-exposed face. Mutagenesis shows that dimerisation is essential for filamentous actin (F-actin) binding and indicates that the dimerisation helix itself contributes to binding. We have used these structures together with small angle X-ray scattering to derive a model of the entire domain. Electron microscopy provides direct evidence for binding of the dimer to F-actin and indicates that it binds to three monomers along the long-pitch helix of the actin filament.
No takes yet. Share an insight, caveat, or question.
Gingras et al. (2007) studied this question. Structural analysis of the C-terminal actin-binding domain of talin reveals a five-helix bundle and a dimerisation helix that is essential for filamentous actin binding.
Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context: