Structural basis of Arf1-driven membrane tubulation
Membrane tubules form at Golgi compartments to facilitate membrane and cargo flow in intracellular trafficking. Here we show that the small GTPase Arf1, an inducer of membrane curvature and key regulator of trafficking, is able to form strongly curved tubules in the presence of lipids and GTP{gamma}S in vitro without the need for further coat components. Using cryo-electron microscopy, we determined the structures of tubular Arf1-scaffolds with diameters of 195 and 215 [A] at 3.1 and 3.8 [A] resolutions, respectively. The nucleotide-bound globular domains of Arf1 form polar helical lattices (i.e. directional assemblies with distinct start/finish orientations), with conserved interfaces and a consistent back-to-face orientation along the filaments. The rigid coat is tethered to the membrane by a flexible linker and anchored by an amphipathic helix (AH) that is free to diffuse and make space within the leaflet, allowing for accommodation of transmembrane cargo. The diversity of tubular diameters observed would allow various cargo sizes to be accommodated in the lumen, while maintaining the local coat architecture. Apart from serving as tubular transport intermediates, Arf1-scaffolds may also play a role at the neck of COPI vesicle on the route to scission.