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The cell type composition of the adult mouse brain revealed by single cell and spatial genomics

The function of the mammalian brain relies upon the specification and spatial positioning of diversely specialized cell types. Yet, the molecular identities of the cell types, and their positions within individual anatomical structures, remain incompletely known. To construct a comprehensive atlas o...

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Autores principales: Langlieb, Jonah, Sachdev, Nina S., Balderrama, Karol S., Nadaf, Naeem M., Raj, Mukund, Murray, Evan, Webber, James T., Vanderburg, Charles, Gazestani, Vahid, Tward, Daniel, Mezias, Chris, Li, Xu, Cable, Dylan M., Norton, Tabitha, Mitra, Partha, Chen, Fei, Macosko, Evan Z.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10028805/
https://www.ncbi.nlm.nih.gov/pubmed/36945580
http://dx.doi.org/10.1101/2023.03.06.531307
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author Langlieb, Jonah
Sachdev, Nina S.
Balderrama, Karol S.
Nadaf, Naeem M.
Raj, Mukund
Murray, Evan
Webber, James T.
Vanderburg, Charles
Gazestani, Vahid
Tward, Daniel
Mezias, Chris
Li, Xu
Cable, Dylan M.
Norton, Tabitha
Mitra, Partha
Chen, Fei
Macosko, Evan Z.
author_facet Langlieb, Jonah
Sachdev, Nina S.
Balderrama, Karol S.
Nadaf, Naeem M.
Raj, Mukund
Murray, Evan
Webber, James T.
Vanderburg, Charles
Gazestani, Vahid
Tward, Daniel
Mezias, Chris
Li, Xu
Cable, Dylan M.
Norton, Tabitha
Mitra, Partha
Chen, Fei
Macosko, Evan Z.
author_sort Langlieb, Jonah
collection PubMed
description The function of the mammalian brain relies upon the specification and spatial positioning of diversely specialized cell types. Yet, the molecular identities of the cell types, and their positions within individual anatomical structures, remain incompletely known. To construct a comprehensive atlas of cell types in each brain structure, we paired high-throughput single-nucleus RNA-seq with Slide-seq–a recently developed spatial transcriptomics method with near-cellular resolution–across the entire mouse brain. Integration of these datasets revealed the cell type composition of each neuroanatomical structure. Cell type diversity was found to be remarkably high in the midbrain, hindbrain, and hypothalamus, with most clusters requiring a combination of at least three discrete gene expression markers to uniquely define them. Using these data, we developed a framework for genetically accessing each cell type, comprehensively characterized neuropeptide and neurotransmitter signaling, elucidated region-specific specializations in activity-regulated gene expression, and ascertained the heritability enrichment of neurological and psychiatric phenotypes. These data, available as an online resource (BrainCellData.org) should find diverse applications across neuroscience, including the construction of new genetic tools, and the prioritization of specific cell types and circuits in the study of brain diseases.
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spelling pubmed-100288052023-03-22 The cell type composition of the adult mouse brain revealed by single cell and spatial genomics Langlieb, Jonah Sachdev, Nina S. Balderrama, Karol S. Nadaf, Naeem M. Raj, Mukund Murray, Evan Webber, James T. Vanderburg, Charles Gazestani, Vahid Tward, Daniel Mezias, Chris Li, Xu Cable, Dylan M. Norton, Tabitha Mitra, Partha Chen, Fei Macosko, Evan Z. bioRxiv Article The function of the mammalian brain relies upon the specification and spatial positioning of diversely specialized cell types. Yet, the molecular identities of the cell types, and their positions within individual anatomical structures, remain incompletely known. To construct a comprehensive atlas of cell types in each brain structure, we paired high-throughput single-nucleus RNA-seq with Slide-seq–a recently developed spatial transcriptomics method with near-cellular resolution–across the entire mouse brain. Integration of these datasets revealed the cell type composition of each neuroanatomical structure. Cell type diversity was found to be remarkably high in the midbrain, hindbrain, and hypothalamus, with most clusters requiring a combination of at least three discrete gene expression markers to uniquely define them. Using these data, we developed a framework for genetically accessing each cell type, comprehensively characterized neuropeptide and neurotransmitter signaling, elucidated region-specific specializations in activity-regulated gene expression, and ascertained the heritability enrichment of neurological and psychiatric phenotypes. These data, available as an online resource (BrainCellData.org) should find diverse applications across neuroscience, including the construction of new genetic tools, and the prioritization of specific cell types and circuits in the study of brain diseases. Cold Spring Harbor Laboratory 2023-03-13 /pmc/articles/PMC10028805/ /pubmed/36945580 http://dx.doi.org/10.1101/2023.03.06.531307 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (https://creativecommons.org/licenses/by-nc-nd/4.0/) , which allows reusers to copy and distribute the material in any medium or format in unadapted form only, for noncommercial purposes only, and only so long as attribution is given to the creator.
spellingShingle Article
Langlieb, Jonah
Sachdev, Nina S.
Balderrama, Karol S.
Nadaf, Naeem M.
Raj, Mukund
Murray, Evan
Webber, James T.
Vanderburg, Charles
Gazestani, Vahid
Tward, Daniel
Mezias, Chris
Li, Xu
Cable, Dylan M.
Norton, Tabitha
Mitra, Partha
Chen, Fei
Macosko, Evan Z.
The cell type composition of the adult mouse brain revealed by single cell and spatial genomics
title The cell type composition of the adult mouse brain revealed by single cell and spatial genomics
title_full The cell type composition of the adult mouse brain revealed by single cell and spatial genomics
title_fullStr The cell type composition of the adult mouse brain revealed by single cell and spatial genomics
title_full_unstemmed The cell type composition of the adult mouse brain revealed by single cell and spatial genomics
title_short The cell type composition of the adult mouse brain revealed by single cell and spatial genomics
title_sort cell type composition of the adult mouse brain revealed by single cell and spatial genomics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10028805/
https://www.ncbi.nlm.nih.gov/pubmed/36945580
http://dx.doi.org/10.1101/2023.03.06.531307
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