Brain-Derived Neurotrophic Factor Enhances GABA Release Probability and Nonuniform Distribution of N- and P/Q-Type Channels on Release Sites of Hippocampal Inhibitory Synapses
Open Access
- 30 March 2005
- journal article
- research article
- Published by Society for Neuroscience in Journal of Neuroscience
- Vol. 25 (13) , 3358-3368
- https://doi.org/10.1523/jneurosci.4227-04.2005
Abstract
Long-lasting exposures to brain-derived neurotrophic factor (BDNF) accelerate the functional maturation of GABAergic transmission in embryonic hippocampal neurons, but the molecular bases of this phenomenon are still debated. Evidence in favor of a postsynaptic site of action has been accumulated, but most of the data support a presynaptic site effect. A crucial issue is whether the enhancement of evoked IPSCs (eIPSCs) induced by BDNF is attributable to an increase in any of the elementary parameters controlling neurosecretion, namely the probability of release, the number of release sites, the readily releasable pool (RRP), and the quantal size. Here, using peak-scaled variance analysis of miniature IPSCs, multiple probability fluctuation analysis, and cumulative amplitude analysis of action potential-evoked postsynaptic currents, we show that BDNF increases release probability and vesicle replenishment with little or no effect on the quantal size, the number of release sites, the RRP, and the Ca2+dependence of eIPSCs. BDNF treatment changes markedly the distribution of Ca2+channels controlling neurotransmitter release. It enhances markedly the contribution of N- and P/Q-type channels, which summed to >100% (“supra-additivity”), and deletes the contribution of R-type channels. BDNF accelerates the switch of presynaptic Ca2+channel distribution from “segregated” to “nonuniform” distribution. This maturation effect was accompanied by an uncovered increased control of N-type channels on paired-pulse depression, otherwise dominated by P/Q-type channels in untreated neurons. Nevertheless, BDNF preserved the fast recovery from depression associated with N-type channels. These novel presynaptic BDNF actions derive mostly from an enhanced overlapping and better colocalization of N- and P/Q-type channels to vesicle release sites.Keywords
This publication has 48 references indexed in Scilit:
- Role of neurotrophins in central synapse formation and stabilizationNature Reviews Neuroscience, 2002
- Presynaptic Specificity of Endocannabinoid Signaling in the HippocampusNeuron, 2001
- Differential control of GABA release at synapses from distinct interneurons in rat hippocampusThe Journal of Physiology, 2000
- Release probability modulates short‐term plasticity at a rat giant terminalThe Journal of Physiology, 2000
- Postsynaptic expression of long‐term potentiation in the rat dentate gyrus demonstrated by variance‐mean analysisThe Journal of Physiology, 1999
- Locus of frequency‐dependent depression identified with multiple‐probability fluctuation analysis at rat climbing fibre‐Purkinje cell synapsesThe Journal of Physiology, 1998
- Differences in Synaptic GABAA Receptor Number Underlie Variation in GABA Mini AmplitudeNeuron, 1997
- Estimated conductance of glutamate receptor channels activated during EPSCs at the cerebellar mossy fiber-granule cell synapseNeuron, 1993
- Synaptic Vesicle Phosphoproteins and Regulation of Synaptic FunctionScience, 1993
- Calcium channel selectivity for divalent and monovalent cations. Voltage and concentration dependence of single channel current in ventricular heart cells.The Journal of general physiology, 1986