Unc13A and Unc13B contribute to the decoding of distinct sensory information in Drosophila.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 33771998.
- Also identified by DOI 10.1038/s41467-021-22180-6 and PMC identifier 7997984.
- Licence recorded as CC BY.
- The licence permits redistribution, so the abstract is shown in full and the full text is available from the publisher.
Abstract
The physical distance between presynaptic Ca<sup>2+</sup> channels and the Ca<sup>2+</sup> sensors triggering the release of neurotransmitter-containing vesicles regulates short-term plasticity (STP). While STP is highly diversified across synapse types, the computational and behavioral relevance of this diversity remains unclear. In the Drosophila brain, at nanoscale level, we can distinguish distinct coupling distances between Ca<sup>2+</sup> channels and the (m)unc13 family priming factors, Unc13A and Unc13B. Importantly, coupling distance defines release components with distinct STP characteristics. Here, we show that while Unc13A and Unc13B both contribute to synaptic signalling, they play distinct roles in neural decoding of olfactory information at excitatory projection neuron (ePN) output synapses. Unc13A clusters closer to Ca<sup>2+</sup> channels than Unc13B, specifically promoting fast phasic signal transfer. Reduction of Unc13A in ePNs attenuates responses to both aversive and appetitive stimuli, while reduction of Unc13B provokes a general shift towards appetitive values. Collectively, we provide direct genetic evidence that release components of distinct nanoscopic coupling distances differentially control STP to play distinct roles in neural decoding of sensory information.
Medical subject headings
- Drosophila Proteins
- Drosophila melanogaster
- Membrane Proteins
- Nerve Tissue Proteins
- Neuronal Plasticity
- Synapses
- Synaptic Transmission