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Single-Nucleus Transcriptional Profiling of GAD2-Positive Neurons From Mouse Lateral Habenula Reveals Distinct Expression of Neurotransmission- and Depression-Related Genes.

Publication ,  Journal Article
Green, MV; Gallegos, DA; Boua, J-V; Bartelt, LC; Narayanan, A; West, AE
Published in: Biol Psychiatry Glob Open Sci
October 2023

BACKGROUND: Glutamatergic projection neurons of the lateral habenula (LHb) drive behavioral state modulation by regulating the activity of midbrain monoaminergic neurons. Identifying circuit mechanisms that modulate LHb output is of interest for understanding control of motivated behaviors. METHODS: A small population of neurons within the medial subnucleus of the mouse LHb express the GABAergic (gamma-aminobutyric acidergic)-synthesizing enzyme GAD2, and they can inhibit nearby LHb projection neurons; however, these neurons lack markers of classic inhibitory interneurons, and they coexpress the vesicular glutamate transporter VGLUT2. To determine the molecular phenotype of these neurons, we genetically tagged the nuclei of GAD2-positive cells and used fluorescence-activated nuclear sorting to isolate and enrich these nuclei for single-nucleus RNA sequencing. RESULTS: Our data confirm that GAD2+/VGLUT2+ neurons intrinsic to the LHb coexpress markers of both glutamatergic and GABAergic transmission and that they are transcriptionally distinct from either GABAergic interneurons or habenular glutamatergic neurons. We identify gene expression programs within these cells that show sex-specific differences in expression and that are implicated in major depressive disorder, which has been linked to LHb hyperactivity. Finally, we identify the Ntng2 gene encoding the cell adhesion protein netrin-G2 as a marker of LHb GAD2+/VGLUT2+ neurons and a gene product that may contribute to their target projections. CONCLUSIONS: These data show the value of using genetic enrichment of rare cell types for transcriptome studies, and they advance understanding of the molecular composition of a functionally important class of GAD2+ neurons in the LHb.

Duke Scholars

Published In

Biol Psychiatry Glob Open Sci

DOI

EISSN

2667-1743

Publication Date

October 2023

Volume

3

Issue

4

Start / End Page

686 / 697

Location

United States
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Green, M. V., Gallegos, D. A., Boua, J.-V., Bartelt, L. C., Narayanan, A., & West, A. E. (2023). Single-Nucleus Transcriptional Profiling of GAD2-Positive Neurons From Mouse Lateral Habenula Reveals Distinct Expression of Neurotransmission- and Depression-Related Genes. Biol Psychiatry Glob Open Sci, 3(4), 686–697. https://doi.org/10.1016/j.bpsgos.2023.04.004
Green, Matthew V., David A. Gallegos, Jane-Valeriane Boua, Luke C. Bartelt, Arthy Narayanan, and Anne E. West. “Single-Nucleus Transcriptional Profiling of GAD2-Positive Neurons From Mouse Lateral Habenula Reveals Distinct Expression of Neurotransmission- and Depression-Related Genes.Biol Psychiatry Glob Open Sci 3, no. 4 (October 2023): 686–97. https://doi.org/10.1016/j.bpsgos.2023.04.004.
Green MV, Gallegos DA, Boua J-V, Bartelt LC, Narayanan A, West AE. Single-Nucleus Transcriptional Profiling of GAD2-Positive Neurons From Mouse Lateral Habenula Reveals Distinct Expression of Neurotransmission- and Depression-Related Genes. Biol Psychiatry Glob Open Sci. 2023 Oct;3(4):686–97.
Green, Matthew V., et al. “Single-Nucleus Transcriptional Profiling of GAD2-Positive Neurons From Mouse Lateral Habenula Reveals Distinct Expression of Neurotransmission- and Depression-Related Genes.Biol Psychiatry Glob Open Sci, vol. 3, no. 4, Oct. 2023, pp. 686–97. Pubmed, doi:10.1016/j.bpsgos.2023.04.004.
Green MV, Gallegos DA, Boua J-V, Bartelt LC, Narayanan A, West AE. Single-Nucleus Transcriptional Profiling of GAD2-Positive Neurons From Mouse Lateral Habenula Reveals Distinct Expression of Neurotransmission- and Depression-Related Genes. Biol Psychiatry Glob Open Sci. 2023 Oct;3(4):686–697.

Published In

Biol Psychiatry Glob Open Sci

DOI

EISSN

2667-1743

Publication Date

October 2023

Volume

3

Issue

4

Start / End Page

686 / 697

Location

United States