Abstract

The strength of individual synaptic contacts is considered a key modulator of information flow across circuits. Presynaptically the strength can be parsed into two key parameters: the size of the readily releasable pool (RRP) and the probability that a vesicle in that pool will undergo exocytosis when an action potential fires (Pv). How these variables are controlled and the degree to which they vary across individual nerve terminals is crucial to understand synaptic plasticity within neural circuits. Here we report robust measurements of these parameters in rat hippocampal neurons and their variability across populations of individual synapses. We explore the diversity of presynaptic Ca2+ channel repertoires and evaluate their effect on synaptic strength at single boutons. Finally, we study the degree to which synapses can be differentially modified by a known potentiator of presynaptic function, forskolin. Our experiments revealed that both Pv and RRP spanned a large range, even for synapses made by the same axon, demonstrating that presynaptic efficacy is governed locally at the single synapse level. Synapses varied greatly in their dependence on N or P/Q type Ca2+ channels for neurotransmission, but there was no association between specific channel repertoires and synaptic efficacy. Increasing cAMP concentration using forskolin enhanced synaptic transmission in a Ca2+-independent manner that was inversely related with a synapse's initial Pv, and independent of its RRP size. We propose a simple model based on the relationship between Pv and calcium entry that can account for the variable potentiation of synapses based on initial probability of vesicle fusion.

Highlights

  • Synapses made by the same axon can have very different neurotransmitter release characteristics

  • To obtain reliable estimates of Pv and readily releasable pool (RRP) size at individual synapses we extended a previously developed optical method based on the vesicular glutamate transporter fused to the pH-sensitive GFP pHluorin

  • If we assume that a binomial process with parameters Pv and n fully describes the behavior of a synapse during this kind of experiment, we can ask how much the measured Pv will fluctuate around the real Pv

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Summary

Introduction

Synapses made by the same axon can have very different neurotransmitter release characteristics. Important influences on Pr at each synapse are the identity of target neurons (Markram et al, 1998; Reyes et al, 1998; Sylwestrak and Ghosh, 2012), the activity level and position on dendrites being contacted (Branco et al, 2008; De Jong et al, 2012), and the GABA concentration in the local microenvironment (Laviv et al, 2010) How these influences translate into different Pr values for synapses along the same axon is largely unknown.

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