Functional and physical coupling of voltage‐sensitive calcium channels with exocytotic proteins: ramifications for the secretion mechanism
Open Access
- 15 May 2001
- journal article
- review article
- Published by Wiley in Journal of Neurochemistry
- Vol. 77 (4) , 972-985
- https://doi.org/10.1046/j.1471-4159.2001.00347.x
Abstract
The secretion of neurotransmitters is a rapid Ca2+‐regulated process that brings about vesicle fusion with the plasma membrane. This rapid process (< 100 µs) involves multiple proteins located at the plasma and vesicular membranes. Because of their homology to proteins participating in constitutive secretion and protein trafficking, they have been characterized extensively. The sequential events that lead these proteins to vesicle docking and fusion are still unclear. We will review recent studies that demonstrate the operative role played by voltage‐sensitive Ca2+ channels and discuss the relevance for the process of evoked transmitter release. The regulation of Ca2+ influx by syntaxin, synaptosome‐associated protein of 25 kDa (SNAP‐25) and synaptotagmin, and the reciprocity of these proteins in controlling the kinetic properties of the channel will be discussed. Calcium channel and synaptic proteins expressed in Xenopus oocytes demonstrate a strong functional interaction, which could be pertinent to the mechanism of secretion. First, the voltage‐sensitive Ca2+ channels are negatively modulated by syntaxin: this inhibition is reversed by synaptotagmin. Second, the modulation of N‐type Ca2+ channel activation kinetics strongly suggests that the vesicle could be docked at the plasma membrane through direct interaction with synaptotagmin. Finally, these interactions provide evidence for the assembly of the voltage‐sensitive Ca2+ channel with syntaxin 1A, SNAP‐25 and synaptotagmin into an excitosome complex: a putative fusion complex with a potential role in the final stages of secretion. Studies suggest that cross‐talk between the synaptic proteins and the channel in a tightly organized complex may enable a rapid secretory response to an incoming signal such as membrane depolarization.Keywords
This publication has 122 references indexed in Scilit:
- Crystal Structure of the Cytosolic C2a-C2b Domains of Synaptotagmin IIIThe Journal of cell biology, 1999
- Effect of changes in action potential shape on calcium currents and transmitter release in a calyx–type synapse of the rat auditory brainstemPhilosophical Transactions Of The Royal Society B-Biological Sciences, 1999
- Calcium Can Disrupt the SNARE Protein Complex on Sea Urchin Egg Secretory Vesicles without Irreversibly Blocking FusionJournal of Biological Chemistry, 1998
- A Cell-Free System for Ca2+-Regulated ExocytosisMethods, 1998
- Interaction of SNARE Complexes with P/Q-type Calcium Channels in Rat Cerebellar SynaptosomesPublished by Elsevier ,1996
- Functional impact of syntaxin on gating of N-type and Q-type calcium channelsNature, 1995
- Syntaxin and synaptobrevin function downstream of vesicle docking in drosophilaNeuron, 1995
- Single calcium channels and acetylcholine release at a presynaptic nerve terminalNeuron, 1993
- Monoclonal antibodies immunoprecipitating ω-conotoxin-sensitive calcium channel molecules recognize two novel proteins localized in the nervous systemBiochemical and Biophysical Research Communications, 1991
- EVIDENCE FOR RECYCLING OF SYNAPTIC VESICLE MEMBRANE DURING TRANSMITTER RELEASE AT THE FROG NEUROMUSCULAR JUNCTIONThe Journal of cell biology, 1973