PubMed Health⌕ Search

PubMed · 10329695

A model for dynamin self-assembly based on binding between three different protein domains.

Abstract

Dynamin is a 100-kDa GTPase that assembles into multimeric spirals at the necks of budding clathrin-coated vesicles. We describe three different intramolecular binding interactions that may account for the process of dynamin self-assembly. The first binding interaction is the dimerization of a 100-amino acid segment in the C-terminal half of dynamin. We call this segment the assembly domain, because it appears to be critical for multimerization. The second binding interaction occurs between the assembly domain and the N-terminal GTPase domain. The strength of this interaction is controlled by the nucleotide-bound state of the GTPase domain, as shown with mutations in GTP binding motifs and in vitro binding experiments. The third binding interaction occurs between the assembly domain and a segment that we call the middle domain. This is the segment between the N-terminal GTPase domain and the pleckstrin homology domain. The three different binding interactions suggest a model in which dynamin molecules first dimerize. The dimers are then linked into a chain by a second binding reaction. The third binding interaction might connect adjacent rungs of the spiral.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

E Smirnova, D L Shurland, E D Newman-Smith, B Pishvaee, A M van der Bliek. 1999-05-21. A model for dynamin self-assembly based on binding between three different protein domains.. https://doi.org/10.1074/jbc.274.21.14942

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Mitochondrial inner-membrane fusion and crista maintenance requires the dynamin-related GTPase Mgm1.

Mitochondrial outer- and inner-membrane fusion events are coupled in vivo but separable and mechanistically distinct in vitro, indicating that separate fusion machines exist in each membrane. Outer-membrane fusion requires trans interactions of the dynamin-related GTPase Fzo1, GTP hydrolysis, and an intact inner-membrane proton gradient. Inner-membrane fusion also requires GTP hydrolysis but distinctly requires an inner-membrane electrical potential. The protein machinery responsible for inner-membrane fusion is unknown. Here, we show that the conserved intermembrane-space dynamin-related GTPase Mgm1 is required to tether and fuse mitochondrial inner membranes. We observe an additional role of Mgm1 in inner-membrane dynamics, specifically in the maintenance of crista structures. We present evidence that trans Mgm1 interactions on opposing inner membranes function similarly to tether and fuse inner membranes as well as maintain crista structures and propose a model for how the mitochondrial dynamins function to facilitate fusion.

Dynamins↗

Dissecting mitochondrial fusion.

Because mitochondria have outer and inner membranes, the fusion of two mitochondria requires the coordinated fusion of four lipid bilayers. Fusion of the outer membranes requires mitofusins. A new study published in Cell (Meeusen et al., 2006) shows that inner membrane fusion requires the dynamin-related protein Mgm1/OPA1.

Dynamins↗