Connectomics of predicted Sst transcriptomic types in mouse visual cortex.

TitleConnectomics of predicted Sst transcriptomic types in mouse visual cortex.
Publication TypeJournal Article
Year of Publication2025
AuthorsGamlin CR, Schneider-Mizell CM, Mallory M, Elabbady L, Gouwens N, Williams G, Mukora A, Dalley R, Bodor AL, Brittain D, Buchanan JA, Bumbarger DJ, Joyce E, Kapner D, Kinn S, Mahalingam G, Seshamani S, Takeno M, Torres R, Yin W, Nicovich PR, J Bae A, Castro MA, Dorkenwald S, Halageri A, Jia Z, Jordan C, Kemnitz N, Lee K, Li K, Lu R, Macrina T, Mitchell E, Mondal SSubhra, Mu S, Nehoran B, Popovych S, Silversmith W, Turner NL, Wong W, Wu J, Yu S-C, Berg J, Jarsky T, Lee B, H Seung S, Zeng H, R Reid C, Collman F, da Costa NMaçarico, Sorensen SA
JournalNature
Volume640
Issue8058
Pagination497-505
Date Published2025 Apr
ISSN1476-4687
KeywordsAnimals, Axons, Connectome, Female, Male, Mice, Mice, Inbred C57BL, Myelin Sheath, Neurons, Somatostatin, Synapses, Transcriptome, Visual Cortex
Abstract

Neural circuit function is shaped both by the cell types that comprise the circuit and the connections between them1. Neural cell types have previously been defined by morphology2,3, electrophysiology4, transcriptomic expression5,6, connectivity7-9 or a combination of such modalities10-12. The Patch-seq technique enables the characterization of morphology, electrophysiology and transcriptomic properties from individual cells13-15. These properties were integrated to define 28 inhibitory, morpho-electric-transcriptomic (MET) cell types in mouse visual cortex16, which do not include synaptic connectivity. Conversely, large-scale electron microscopy (EM) enables morphological reconstruction and a near-complete description of a neuron's local synaptic connectivity, but does not include transcriptomic or electrophysiological information. Here, we leveraged morphological information from Patch-seq to predict the transcriptomically defined cell subclass and/or MET-type of inhibitory neurons within a large-scale EM dataset. We further analysed Martinotti cells-a somatostatin (Sst)-positive17 morphological cell type18,19-which were classified successfully into Sst MET-types with distinct axon myelination and synaptic output connectivity patterns. We demonstrate that morphological features can be used to link cell types across experimental modalities, enabling further comparison of connectivity to gene expression and electrophysiology. We observe unique connectivity rules for predicted Sst cell types.

DOI10.1038/s41586-025-08805-6
Alternate JournalNature
PubMed ID40205210
PubMed Central IDPMC11981948
Grant ListR01 EY023173 / EY / NEI NIH HHS / United States
RF1 MH125932 / MH / NIMH NIH HHS / United States
U01 MH105982 / MH / NIMH NIH HHS / United States