Characterization of the role of the Synaptotagmin family as calcium sensors in facilitation and asynchronous neurotransmitter release
- 28 August 2007
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 104 (35) , 14122-14127
- https://doi.org/10.1073/pnas.0706711104
Abstract
Ca(2+) influx into presynaptic nerve terminals activates synaptic vesicle exocytosis by triggering fast synchronous fusion and a slower asynchronous release pathway. In addition, a brief rise in Ca(2+) after consecutive action potentials has been correlated with a form of short-term synaptic plasticity with enhanced vesicle fusion termed facilitation. Although the synaptic vesicle protein Synaptotagmin 1 (Syt1) has been implicated as the Ca(2+) sensor for synchronous fusion, the molecular identity of the Ca(2+) sensors that mediate facilitation and asynchronous release is unknown. To test whether the synchronous Ca(2+) sensor, Syt1, or the asynchronous Ca(2+) sensor is involved in facilitation, we analyzed whether genetic elimination of Syt1 in Drosophila results in a concomitant impairment in facilitation. Our results indicate that Syt1 acts as a redundant Ca(2+) sensor for facilitation, with the asynchronous Ca(2+) sensor contributing significantly to this form of short-term plasticity. We next examined whether other members of the Drosophila Syt family functioned in Ca(2+)-dependent asynchronous release or facilitation in vivo. Genetic elimination of other panneuronally expressed Syt proteins did not alter these forms of exocytosis, indicating a non-Syt Ca(2+) sensor functions for both facilitation and asynchronous release. In light of these findings, the presence of two presynaptic Ca(2+) sensors can be placed in a biological context, a Syt1-based Ca(2+) sensor devoted primarily to baseline synaptic transmission and a second non-Syt Ca(2+) sensor for short-term synaptic plasticity and asynchronous release.Keywords
This publication has 23 references indexed in Scilit:
- Presynaptic N-type Calcium Channels Regulate Synaptic GrowthJournal of Biological Chemistry, 2003
- Impaired membrane resealing and autoimmune myositis in synaptotagmin VII–deficient miceThe Journal of cell biology, 2003
- Different domains of synaptotagmin control the choice between kiss-and-run and full fusionNature, 2003
- Synaptotagmin I Functions as a Calcium Sensor to Synchronize Neurotransmitter ReleaseNeuron, 2002
- Short-Term Synaptic PlasticityAnnual Review of Physiology, 2002
- Synaptotagmin Modulation of Fusion Pore Kinetics in Regulated Exocytosis of Dense-Core VesiclesScience, 2001
- Synaptotagmin VII as a Plasma Membrane Ca2+ Sensor in ExocytosisNeuron, 2001
- Genetic and molecular analysis of the synaptotagmin familyCellular and Molecular Life Sciences, 2001
- Probing Fundamental Aspects of Synaptic Transmission with StrontiumJournal of Neuroscience, 2000
- Kinetics of Synaptotagmin Responses to Ca2+ and Assembly with the Core SNARE Complex onto MembranesNeuron, 1999