A transcriptomic and spatial map of serotonin autoreceptor expression in Drosophila
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Serotonin is an evolutionarily ancient neurotransmitter that modulates an array of behaviors such as mood, sleep, and appetite across species. Serotonin acts primarily by binding to serotonin receptors, which are expressed in post-synaptic neurons (heteroreceptors) and serotonergic neurons themselves (autoreceptors). Serotonin autoreceptors modulate serotonergic tone, the foundational principles of which have been excellently demonstrated in vertebrate and invertebrate models. However, many aspects of the mechanisms and contexts in which this modulation occurs are still unclear. Drosophila melanogaster is a powerful model organism that can provide unique insights into autoreceptor function by the ability to perform precise spatial and temporal genetic manipulation with structural and functional readouts / behaviors of serotonin systems. However, a systematic characterization of serotonin autoreceptor expression in Drosophila has not been conducted. Here we use single-cell sequencing and genetic labeling to show that all five serotonin receptors are expressed in serotonergic neurons and map their expression at both the larval and adult stages of development. This is the first evidence of 5-HT2A and 5-HT7 expression in serotonergic neurons in any organism. Moreover, the unique combinations of autoreceptor expression in specific neuronal clusters will aid in the development of novel hypotheses for autoreceptor function, and demonstrates the utility of Drosophila as a model organism to study the function of serotonin autoreceptors.
Significance Statement
This paper is a valuable addition to the neuroscientific community because it: 1) is the first to discover all serotonin receptors are autoreceptors in Drosophila ; 2) is the first to identify 5-HT2A and 5-HT7 autoreceptor expression in any organism; 3) demonstrates putative unique combinatorial autoreceptor expression in certain serotonergic neurons; 4) provides spatial information as to which serotonergic neurons express autoreceptors, which will support the development of future testable hypotheses for autoreceptor function in Drosophila .