bioRxiv · 10.1101/2020.08.28.271742
Spontaneous single synapse activity predicts evoked neurotransmission by using overlapping machinery
Abstract
Synaptic transmission relies on presynaptic neurotransmitter (NT) release from synaptic vesicles (SVs) and on NT detection by postsynaptic receptors. Transmission exists in two principal modes: action-potential (AP) evoked and AP-independent, "spontaneous" transmission. AP-evoked neurotransmission is considered the primary mode of inter-neural communication, whereas spontaneous transmission is required for neuronal development, homeostasis, and plasticity. While some synapses appear dedicated to spontaneous transmission only, all AP-responsive synapses also engage spontaneously, but whether this encodes functional information regarding their excitability is unknown. Here we report on functional interdependence of both transmission modes at individual synaptic contacts of Drosophila larval neuromuscular junctions (NMJs) which were identified by the presynaptic scaffolding protein Bruchpilot (BRP). Consistent with its role in organizing the AP-dependent release machinery (voltage-dependent Ca2+ channels and SV fusion machinery), most active BRP-positive synapses (>85%) responded to APs. At these synapses, the level of spontaneous activity was a precise predictor for their responsiveness to AP-stimulation. Both transmission modes engaged an overlapping pool of SVs and NT-receptors, and both were affected by the non-specific Ca2+ channel blocker cadmium. Thus, by using overlapping machinery, spontaneous transmission is a continuous, stimulus independent predictor for the AP-responsiveness of individual synapses.
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Grasskamp, A. T., Jusyte, M., McCarthy, A. W., Goetz, T. W. B., Walter, A. M.. 2020-08-30. Spontaneous single synapse activity predicts evoked neurotransmission by using overlapping machinery. https://doi.org/10.1101/2020.08.28.271742
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