N-ethylmaleimide-sensitive fusion protein: a trimeric ATPase whose hydrolysis of ATP is required for membrane fusion.
Open Access
- 15 August 1994
- journal article
- Published by Rockefeller University Press in The Journal of cell biology
- Vol. 126 (4), 945-954
- https://doi.org/10.1083/jcb.126.4.945
Abstract
The NEM-sensitive fusion protein, NSF, together with SNAPs (soluble NSF attachment proteins) and the SNAREs (SNAP receptors), is thought to be generally used for the fusion of transport vesicles to their target membranes. NSF is a homotrimer whose polypeptide subunits are made up of three distinct domains: an amino-terminal domain (N) and two homologous ATP-binding domains (D1 and D2). Mutants of NSF were produced in which either the order or composition of the three domains were altered. These mutants could not support intra-Golgi transport, but they indicated that the D2 domain was required for trimerization of the NSF subunits. Mutations of the first ATP-binding site that affected either the binding (K266A) or hydrolysis (E329Q) of ATP completely eliminated NSF activity. The hydrolysis mutant was an effective, reversible inhibitor of Golgi transport with an IC50 of 125 ng/50 microliters assay. Mutants in the second ATP-binding site (binding, K549A; hydrolysis, D604Q) had either 14 or 42% the specific activity of the wild-type protein, respectively. Using coexpression of an inactive mutant with wild-type subunits, it was possible to produce a recombinant form of trimeric NSF that contained a mixture of subunits. The mixed NSF trimers were inactive, even when only one mutant subunit was present, suggesting that NSF action requires each of the three subunits in a concerted mechanism. These studies demonstrate that the ability of the D1 domain to hydrolyze ATP is required for NSF activity and, therefore is required for membrane fusion. The D2 domain is required for trimerization, but its ability to hydrolyze ATP is not absolutely required for NSF function.Keywords
This publication has 48 references indexed in Scilit:
- SAV, an archaebacterial gene with extensive homology to a family of highly conserved eukaryotic ATPasesJournal of Molecular Biology, 1994
- A protein assembly-disassembly pathway in vitro that may correspond to sequential steps of synaptic vesicle docking, activation, and fusionCell, 1993
- Binding of coatomer to Golgi membranes requires ADP-ribosylation factorJournal of Biological Chemistry, 1993
- The molecular machinery for secretion is conserved from yeast to neurons.Proceedings of the National Academy of Sciences, 1993
- Budding from Golgi membranes requires the coatomer complex of non-clathrin coat proteinsNature, 1993
- Two complementary approaches to study peroxisome biogenesis in Saccharomyces cerevisiae: Forward and reversed geneticsBiochimie, 1993
- A survey of expressed genes in Caenorhabditis elegansNature Genetics, 1992
- Reconstitution of the transport of protein between successive compartments of the golgi measured by the coupled incorporation of N-acetylglucosamineCell, 1984
- Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4Nature, 1970
- Equilibrium Ultracentrifugation of Dilute Solutions*Biochemistry, 1964