Two classes of amine/glutamate multi-transmitter neurons innervate Drosophila internal male reproductive organs

dc.contributor.authorChaverra, Martha
dc.contributor.authorToney, John Paul
dc.contributor.authorDardenne-Ankringa, Lizetta D.
dc.contributor.authorTolleson Knee, Jace
dc.contributor.authorMorris, Ann R.
dc.contributor.authorWadhams, Joseph
dc.contributor.authorCertel, Sarah J.
dc.contributor.authorStowers, R. Steven
dc.date.accessioned2026-07-30T21:45:13Z
dc.date.issued2025-10
dc.description.abstractThe essential outcome of a successful mating is the transfer of genetic material from males to females in sexually reproducing animals from insects to mammals. In males, this culminates in ejaculation, a precisely timed sequence of organ contractions driven by the concerted activity of interneurons, sensory neurons, and motor neurons. Although central command circuits that trigger copulation have been mapped, the motor architecture and the chemical logic that couple specific neuronal subclasses to organ-specific contractility, seminal fluid secretion, and sperm emission remain largely uncharted. This gap in knowledge limits our ability to explain how neural circuits adapt to varying contexts and how their failure contributes to infertility. Here, we present an in-depth anatomical and functional analysis of the motor neurons that innervate the internal male reproductive tract of Drosophila melanogaster. We identify two classes of multi-transmitter motor neurons based on neurotransmitter usage, namely octopamine and glutamate neurons (OGNs) and serotonin and glutamate neurons (SGNs), each with a biased pattern of innervation: SGNs predominate in the accessory glands, OGNs in the ejaculatory duct, with equal contributions of each to the seminal vesicles. Both classes co-express vesicular transporters for glutamate (vGlut) and amines (vMAT), confirming their dual chemical identity. Their target organs differentially express receptors for glutamate, octopamine, and serotonin, suggesting combinatorial neuromodulation of contractility. Functional manipulations show that SGNs are essential for male fertility but OGNs are dispensable. Glutamatergic transmission from both classes is also dispensable for fertility. These findings provide the first high-resolution map linking multi-transmitter motor neurons to specific reproductive organs, reveal an unexpected division of labor between serotonergic and octopaminergic signaling pathways, and establish a framework for dissecting conserved neural principles that govern ejaculation and male fertility.
dc.identifier.citationMarta Chaverra, John Paul Toney, Lizetta D Dardenne-Ankringa, Jace Tolleson Knee, Ann R Morris, Joseph B Wadhams, Sarah J Certel, R Steven Stowers (2026) Two classes of amine/glutamate multi-transmitter neurons innervate Drosophila internal male reproductive organs eLife 14:RP108225
dc.identifier.doi10.7554/eLife.108225
dc.identifier.issn2050-084X
dc.identifier.urihttps://scholarworks.montana.edu/handle/1/20073
dc.language.isoen_US
dc.publishereLife Sciences Publications
dc.rightscc-by
dc.rights.urihttps://creativecommons.org/licenses/by/4.0/
dc.subjectreproductive organs
dc.subjectDrosophila
dc.subjectinsemination
dc.subjectmale fertility
dc.titleTwo classes of amine/glutamate multi-transmitter neurons innervate Drosophila internal male reproductive organs
dc.typeArticle
mus.citation.extentfirstpage1
mus.citation.extentlastpage46
mus.citation.journaltitleeLife
mus.citation.volume14
mus.relation.collegeCollege of Agriculture
mus.relation.departmentMicrobiology & Cell Biology
mus.relation.universityMontana State University - Bozeman

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