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PMID: 15102912 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S.

Genetic analysis of soluble N-ethylmaleimide-sensitive factor attachment protein function in Drosophila reveals positive and negative secretory roles.

Babcock M, Macleod GT, Leither J, Pallanck L

Abstract

The N-ethylmaleimide-sensitive factor (NSF) and soluble NSF attachment protein (SNAP) are cytosolic factors that promote vesicle fusion with a target membrane in both the constitutive and regulated secretory pathways. NSF and SNAP are thought to function by catalyzing the disassembly of a SNAP receptor (SNARE) complex consisting of membrane proteins of the secretory vesicle and target membrane. Although studies of NSF function have provided strong support for this model, the precise biochemical role of SNAP remains controversial. To further explore the function of SNAP, we have used mutational and transgenic approaches in Drosophila to investigate the effect of altered SNAP dosage on neurotransmitter release and SNARE complex metabolism. Our results indicate that reduced SNAP activity results in diminished neurotransmitter release and accumulation of a neural SNARE complex. Increased SNAP dosage results in defective synapse formation and a variety of tissue morphological defects without detectably altering the abundance of neural SNARE complexes. The SNAP overexpression phenotypes are enhanced by mutations in other secretory components and are at least partially overcome by co-overexpression of NSF, suggesting that these phenotypes derive from a specific perturbation of the secretory pathway. Our results indicate that SNAP promotes neurotransmitter release and SNARE complex disassembly but inhibits secretion when present at high abundance relative to NSF.

MeSH Terms
Alleles Animals Animals, Genetically Modified Carrier Proteins/genetics,metabolism DNA Mutational Analysis Drosophila Gene Dosage Gene Expression Genes, Lethal Genes, Recessive Genetic Complementation Test Genetic Testing Larva Macromolecular Substances Membrane Fusion/physiology Membrane Proteins/genetics,metabolism Mutation N-Ethylmaleimide-Sensitive Proteins Neuromuscular Junction/metabolism Neurotransmitter Agents/metabolism Phenotype Presynaptic Terminals/metabolism,ultrastructure Protein Transport/genetics SNARE Proteins Soluble N-Ethylmaleimide-Sensitive Factor Attachment Proteins Synapses/metabolism,ultrastructure Vesicular Transport Proteins
Chemicals
Carrier Proteins Macromolecular Substances Membrane Proteins Neurotransmitter Agents SNARE Proteins Soluble N-Ethylmaleimide-Sensitive Factor Attachment Proteins Vesicular Transport Proteins comt protein, Drosophila N-Ethylmaleimide-Sensitive Proteins
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Babcock Michael
Department of Genome Sciences, University of Washington, Seattle, Washington 98195, USA.
Macleod Greg T
Leither Jennifer
Pallanck Leo
References (37)
37 references, click to expand
  1. A genetic method for generating Drosophila eyes composed exclusively of mitotic clones of a single genotype.
    Genetics. 1999 Aug;152(4):1631-9 PMID: 10430588
  2. Overexpression of cysteine-string proteins in Drosophila reveals interactions with syntaxin.
    J Neurosci. 1999 Dec 1;19(23):10270-9 PMID: 10575024
  3. Genetic characterization of cytological region 77A-D harboring the presenilin gene of Drosophila melanogaster.
    Genetics. 1999 Dec;153(4):1789-97 PMID: 10581285
  4. Role of alpha-SNAP in promoting efficient neurotransmission at the crayfish neuromuscular junction.
    J Neurophysiol. 1999 Dec;82(6):3406-16 PMID: 10601471
  5. Comparison of cysteine string protein (Csp) and mutant alpha-SNAP overexpression reveals a role for csp in late steps of membrane fusion in dense-core granule exocytosis in adrenal chromaffin cells.
    J Neurosci. 2000 Feb 15;20(4):1281-9 PMID: 10662817
  6. Identified motor terminals in Drosophila larvae show distinct differences in morphology and physiology.
    J Neurobiol. 2000 May;43(2):186-97 PMID: 10770847
  7. The docking of primed vacuoles can be reversibly arrested by excess Sec17p (alpha-SNAP).
    J Biol Chem. 2000 Jul 28;275(30):22862-7 PMID: 10816559
  8. Drosophila Futsch/22C10 is a MAP1B-like protein required for dendritic and axonal development.
    Neuron. 2000 May;26(2):357-70 PMID: 10839355
  9. Priming in exocytosis: attaining fusion-competence after vesicle docking.
    Biochimie. 2000 May;82(5):399-407 PMID: 10865127
  10. Membrane fusion and exocytosis.
    Annu Rev Biochem. 1999;68:863-911 PMID: 10872468
  11. Yeast homotypic vacuole fusion: a window on organelle trafficking mechanisms.
    Annu Rev Biochem. 2000;69:247-75 PMID: 10966459
  12. Mechanisms of synaptic vesicle exocytosis.
    Annu Rev Cell Dev Biol. 2000;16:19-49 PMID: 11031229
  13. Partitioning of N-ethylmaleimide-sensitive fusion (NSF) protein function in Drosophila melanogaster: dNSF1 is required in the nervous system, and dNSF2 is required in mesoderm.
    Genetics. 2001 May;158(1):265-78 PMID: 11333235
  14. Analysis of the mutant Drosophila N-ethylmaleimide sensitive fusion-1 protein in comatose reveals molecular correlates of the behavioural paralysis.
    J Neurochem. 2001 Jun;77(5):1407-17 PMID: 11389191
  15. wishful thinking encodes a BMP type II receptor that regulates synaptic growth in Drosophila.
    Neuron. 2002 Feb 14;33(4):545-58 PMID: 11856529
  16. Endophilin mutations block clathrin-mediated endocytosis but not neurotransmitter release.
    Cell. 2002 Apr 5;109(1):101-12 PMID: 11955450
  17. Ecdysone triggers the expression of Golgi genes in Drosophila imaginal discs via broad-complex.
    Dev Biol. 2002 May 1;245(1):172-86 PMID: 11969264
  18. Drosophila VAP-33A directs bouton formation at neuromuscular junctions in a dosage-dependent manner.
    Neuron. 2002 Jul 18;35(2):291-306 PMID: 12160747
  19. Regulated exocytosis and SNARE function (Review).
    Mol Membr Biol. 2003 Jul-Sep;20(3):209-20 PMID: 12893529
  20. Morphological plasticity of motor axons in Drosophila mutants with altered excitability.
    J Neurosci. 1990 Nov;10(11):3754-68 PMID: 1700086
  21. Purification of three related peripheral membrane proteins needed for vesicular transport.
    J Biol Chem. 1990 Jun 15;265(17):10109-17 PMID: 2190980
  22. The locus elav of Drosophila melanogaster is expressed in neurons at all developmental stages.
    Dev Biol. 1988 Apr;126(2):294-303 PMID: 3127258
  23. Nonphototactic mutants in a study of vision of Drosophila.
    Nature. 1969 Apr 26;222(5191):351-4 PMID: 5782110
  24. Non-linear summation of end-plate potentials in the frog and mouse.
    J Physiol. 1981 Feb;311:307-24 PMID: 6267255
  25. Transposition of cloned P elements into Drosophila germ line chromosomes.
    Science. 1982 Oct 22;218(4570):341-7 PMID: 6289435
  26. Monoclonal antibodies against the Drosophila nervous system.
    Proc Natl Acad Sci U S A. 1982 Dec;79(24):7929-33 PMID: 6818557
  27. A rab protein is required for the assembly of SNARE complexes in the docking of transport vesicles.
    Cell. 1994 Sep 23;78(6):937-48 PMID: 7923363
  28. Improved stability of Drosophila larval neuromuscular preparations in haemolymph-like physiological solutions.
    J Comp Physiol A. 1994 Aug;175(2):179-91 PMID: 8071894
  29. Genetic and molecular identification of a Drosophila histidine decarboxylase gene required in photoreceptor transmitter synthesis.
    EMBO J. 1993 Mar;12(3):911-9 PMID: 8096176
  30. Neurally expressed Drosophila genes encoding homologs of the NSF and SNAP secretory proteins.
    Proc Natl Acad Sci U S A. 1994 Jun 7;91(12):5715-9 PMID: 8202553
  31. Expression of synaptotagmin in Drosophila reveals transport and localization of synaptic vesicles to the synapse.
    Development. 1993 Aug;118(4):1077-88 PMID: 8269841
  32. Disruption of a behavioral sequence by targeted death of peptidergic neurons in Drosophila.
    Neuron. 1997 Oct;19(4):813-23 PMID: 9354328
  33. Stimulation of NSF ATPase activity by alpha-SNAP is required for SNARE complex disassembly and exocytosis.
    J Cell Biol. 1997 Nov 17;139(4):875-83 PMID: 9362506
  34. Temperature-sensitive paralytic mutations demonstrate that synaptic exocytosis requires SNARE complex assembly and disassembly.
    Neuron. 1998 Aug;21(2):401-13 PMID: 9728921
  35. Motor nerve terminals on abdominal muscles in larval flesh flies, Sarcophaga bullata: comparisons with Drosophila.
    J Comp Neurol. 1998 Dec 14;402(2):197-209 PMID: 9845243
  36. Synaptic physiology and ultrastructure in comatose mutants define an in vivo role for NSF in neurotransmitter release.
    J Neurosci. 1998 Dec 15;18(24):10241-9 PMID: 9852561
  37. NSF function in neurotransmitter release involves rearrangement of the SNARE complex downstream of synaptic vesicle docking.
    J Neurosci. 1998 Dec 15;18(24):10250-6 PMID: 9852562
Article Info
Journal
The Journal of neuroscience : the official journal of the Society for Neuroscience
Abbr.
J Neurosci
ISSN
1529-2401
Published
2004-04-21
Pages
3964-73
Language
English
Region
United States
NLM ID
8102140
PMCID
PMC6729412
Subset
IM
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