Projectomic Organization of the Serotonin System of the Mouse Brain
Song, J. H.; Friedmann, D.; Wu, Y.; Moses, A.; Baruni, J. K.; Yuan, Y.; Rana, I.; Zhao, K.; Hindmarsh Sten, T.; Wang, Q.; Xiao, S. A.; Chen, X.; Linderman, S. W.; Luo, L.
Show abstract
The serotonin system innervates nearly the entire brain to support diverse functions, and its dysfunction is implicated in multiple psychiatric disorders. Although recent studies suggested that this anatomically diffuse system supports differentiated rather than uniform modulation, its overall organization is unclear. Here, using systematic whole-brain axon tracing and integrated analyses, we show that the serotonin projectome is organized by functional relatedness rather than physical proximity of its targets. Dorsal and median raphe serotonin neurons partition into five projectomic groups, each preferentially innervating the hippocampus, basal ganglia, cortex, medial interbrain, or brainstem/lateral thalamus, with within-group structure ranging from discrete subgroups to continuous variation. Spatial transcriptomic analyses reveal that each projectomic group corresponds to a distinct combination of transcriptomic clusters, with transcriptome and somatic position jointly predicting projectomic identity. Projection-specific serotonin depletion produces dissociable behavioral phenotypes. Together, projectomic identity emerges as a central axis linking axon collateralization, molecular diversity, and behavioral function. HighlightsO_LIFive projectomic groups organize serotonin innervation by functional relatedness C_LIO_LITranscriptomic identity and spatial position jointly define projectomic groups C_LIO_LIProjection-specific serotonin loss produces dissociable behavioral phenotypes C_LIO_LIAn integrated analytic framework extracts structure from complex experimental data C_LI
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