Single-nucleus multi-omics analyses reveal cellular and molecular innovations in the anterior cingulate cortex during primate evolution

The anterior cingulate cortex (ACC) of the human brain is involved in higher-level cognitive functions such as emotion and self-awareness. We generated profiles of human and macaque ACC gene expression and chromatin accessibility at single-nucleus resolution. We characterized the conserved patterns...

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Published inCell genomics Vol. 4; no. 12; p. 100703
Main Authors Yuan, Jiamiao, Dong, Kangning, Wu, Haixu, Zeng, Xuerui, Liu, Xingyan, Liu, Yan, Dai, Jiapei, Yin, Jichao, Chen, Yongjie, Guo, Yongbo, Luo, Wenhao, Liu, Na, Sun, Yan, Zhang, Shihua, Su, Bing
Format Journal Article
LanguageEnglish
Published United States Elsevier Inc 11.12.2024
Elsevier
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Online AccessGet full text
ISSN2666-979X
2666-979X
DOI10.1016/j.xgen.2024.100703

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Abstract The anterior cingulate cortex (ACC) of the human brain is involved in higher-level cognitive functions such as emotion and self-awareness. We generated profiles of human and macaque ACC gene expression and chromatin accessibility at single-nucleus resolution. We characterized the conserved patterns of gene expression, chromatin accessibility, and transcription factor binding in different cell types. Combining the published mouse data, we discovered the molecular identities and cell-lineage origin of the primate von Economo neurons (VENs). Our in vitro and in vivo experiments identified a group of primate-shared and human-specific VEN marker genes, such as PCSK6, ADAMTSL3, and CDHR3, potentially contributing to VEN morphogenesis. We demonstrated that the human-specific sequence changes account for the cellular and functional innovations in the ACC during primate evolution and human origin. These findings provide new insights into understanding the cellular composition and molecular regulation of ACC and its evolutionary role in shaping human-owned higher cognitive skills. [Display omitted] •Cross-species single-nucleus multiome profiling of anterior cingulate cortex•Dissection of molecular identity and cell-lineage origin of the primate VENs•Human-specific VEN marker genes affect neuron morphogenesis during development•Human-specific sequence changes account for regulatory divergence during evolution Yuan et al. conducted cross-species single-nucleus analyses of transcription and chromatin accessibility of the anterior cingulate cortex (ACC). They discovered novel primate-shared and human-specific VEN marker genes acting on cell morphogenesis during brain development, and they delineated the genetic basis of cellular and functional innovations in the ACC during evolution.
AbstractList The anterior cingulate cortex (ACC) of the human brain is involved in higher-level cognitive functions such as emotion and self-awareness. We generated profiles of human and macaque ACC gene expression and chromatin accessibility at single-nucleus resolution. We characterized the conserved patterns of gene expression, chromatin accessibility, and transcription factor binding in different cell types. Combining the published mouse data, we discovered the molecular identities and cell-lineage origin of the primate von Economo neurons (VENs). Our in vitro and in vivo experiments identified a group of primate-shared and human-specific VEN marker genes, such as PCSK6, ADAMTSL3, and CDHR3, potentially contributing to VEN morphogenesis. We demonstrated that the human-specific sequence changes account for the cellular and functional innovations in the ACC during primate evolution and human origin. These findings provide new insights into understanding the cellular composition and molecular regulation of ACC and its evolutionary role in shaping human-owned higher cognitive skills. [Display omitted] •Cross-species single-nucleus multiome profiling of anterior cingulate cortex•Dissection of molecular identity and cell-lineage origin of the primate VENs•Human-specific VEN marker genes affect neuron morphogenesis during development•Human-specific sequence changes account for regulatory divergence during evolution Yuan et al. conducted cross-species single-nucleus analyses of transcription and chromatin accessibility of the anterior cingulate cortex (ACC). They discovered novel primate-shared and human-specific VEN marker genes acting on cell morphogenesis during brain development, and they delineated the genetic basis of cellular and functional innovations in the ACC during evolution.
The anterior cingulate cortex (ACC) of the human brain is involved in higher-level cognitive functions such as emotion and self-awareness. We generated profiles of human and macaque ACC gene expression and chromatin accessibility at single-nucleus resolution. We characterized the conserved patterns of gene expression, chromatin accessibility, and transcription factor binding in different cell types. Combining the published mouse data, we discovered the molecular identities and cell-lineage origin of the primate von Economo neurons (VENs). Our in vitro and in vivo experiments identified a group of primate-shared and human-specific VEN marker genes, such as PCSK6, ADAMTSL3, and CDHR3, potentially contributing to VEN morphogenesis. We demonstrated that the human-specific sequence changes account for the cellular and functional innovations in the ACC during primate evolution and human origin. These findings provide new insights into understanding the cellular composition and molecular regulation of ACC and its evolutionary role in shaping human-owned higher cognitive skills.
The anterior cingulate cortex (ACC) of the human brain is involved in higher-level cognitive functions such as emotion and self-awareness. We generated profiles of human and macaque ACC gene expression and chromatin accessibility at single-nucleus resolution. We characterized the conserved patterns of gene expression, chromatin accessibility, and transcription factor binding in different cell types. Combining the published mouse data, we discovered the molecular identities and cell-lineage origin of the primate von Economo neurons (VENs). Our in vitro and in vivo experiments identified a group of primate-shared and human-specific VEN marker genes, such as PCSK6, ADAMTSL3, and CDHR3, potentially contributing to VEN morphogenesis. We demonstrated that the human-specific sequence changes account for the cellular and functional innovations in the ACC during primate evolution and human origin. These findings provide new insights into understanding the cellular composition and molecular regulation of ACC and its evolutionary role in shaping human-owned higher cognitive skills. •Cross-species single-nucleus multiome profiling of anterior cingulate cortex•Dissection of molecular identity and cell-lineage origin of the primate VENs•Human-specific VEN marker genes affect neuron morphogenesis during development•Human-specific sequence changes account for regulatory divergence during evolution Yuan et al. conducted cross-species single-nucleus analyses of transcription and chromatin accessibility of the anterior cingulate cortex (ACC). They discovered novel primate-shared and human-specific VEN marker genes acting on cell morphogenesis during brain development, and they delineated the genetic basis of cellular and functional innovations in the ACC during evolution.
The anterior cingulate cortex (ACC) of the human brain is involved in higher-level cognitive functions such as emotion and self-awareness. We generated profiles of human and macaque ACC gene expression and chromatin accessibility at single-nucleus resolution. We characterized the conserved patterns of gene expression, chromatin accessibility, and transcription factor binding in different cell types. Combining the published mouse data, we discovered the molecular identities and cell-lineage origin of the primate von Economo neurons (VENs). Our in vitro and in vivo experiments identified a group of primate-shared and human-specific VEN marker genes, such as PCSK6, ADAMTSL3, and CDHR3, potentially contributing to VEN morphogenesis. We demonstrated that the human-specific sequence changes account for the cellular and functional innovations in the ACC during primate evolution and human origin. These findings provide new insights into understanding the cellular composition and molecular regulation of ACC and its evolutionary role in shaping human-owned higher cognitive skills.The anterior cingulate cortex (ACC) of the human brain is involved in higher-level cognitive functions such as emotion and self-awareness. We generated profiles of human and macaque ACC gene expression and chromatin accessibility at single-nucleus resolution. We characterized the conserved patterns of gene expression, chromatin accessibility, and transcription factor binding in different cell types. Combining the published mouse data, we discovered the molecular identities and cell-lineage origin of the primate von Economo neurons (VENs). Our in vitro and in vivo experiments identified a group of primate-shared and human-specific VEN marker genes, such as PCSK6, ADAMTSL3, and CDHR3, potentially contributing to VEN morphogenesis. We demonstrated that the human-specific sequence changes account for the cellular and functional innovations in the ACC during primate evolution and human origin. These findings provide new insights into understanding the cellular composition and molecular regulation of ACC and its evolutionary role in shaping human-owned higher cognitive skills.
SummaryThe anterior cingulate cortex (ACC) of the human brain is involved in higher-level cognitive functions such as emotion and self-awareness. We generated profiles of human and macaque ACC gene expression and chromatin accessibility at single-nucleus resolution. We characterized the conserved patterns of gene expression, chromatin accessibility, and transcription factor binding in different cell types. Combining the published mouse data, we discovered the molecular identities and cell-lineage origin of the primate von Economo neurons (VENs). Our in vitro and in vivo experiments identified a group of primate-shared and human-specific VEN marker genes, such as PCSK6, ADAMTSL3, and CDHR3, potentially contributing to VEN morphogenesis. We demonstrated that the human-specific sequence changes account for the cellular and functional innovations in the ACC during primate evolution and human origin. These findings provide new insights into understanding the cellular composition and molecular regulation of ACC and its evolutionary role in shaping human-owned higher cognitive skills.
ArticleNumber 100703
Author Zhang, Shihua
Liu, Xingyan
Su, Bing
Yin, Jichao
Guo, Yongbo
Luo, Wenhao
Wu, Haixu
Sun, Yan
Dai, Jiapei
Yuan, Jiamiao
Chen, Yongjie
Liu, Yan
Dong, Kangning
Liu, Na
Zeng, Xuerui
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  organization: School of Mathematics, Renmin University of China, Beijing 100872, China
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  organization: Wuhan Institute for Neuroscience and Neuroengineering, South-Central Minzu University, Wuhan 430074, China
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  givenname: Wenhao
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  fullname: Luo, Wenhao
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  givenname: Yan
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  givenname: Shihua
  surname: Zhang
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Issue 12
Keywords brain development
transcription factor
single cell
von Economo neuron
cis-regulatory element
multi-omics
single-nucleotide changes
evolution
anterior cingulate cortex
human accelerated regions
Language English
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Snippet The anterior cingulate cortex (ACC) of the human brain is involved in higher-level cognitive functions such as emotion and self-awareness. We generated...
SummaryThe anterior cingulate cortex (ACC) of the human brain is involved in higher-level cognitive functions such as emotion and self-awareness. We generated...
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SubjectTerms Animals
anterior cingulate cortex
Biological Evolution
brain development
Cell Nucleus - metabolism
Chromatin - genetics
Chromatin - metabolism
cis-regulatory element
evolution
Evolution, Molecular
Genetics
Gyrus Cinguli - cytology
Gyrus Cinguli - metabolism
human accelerated regions
Humans
Macaca
Mice
multi-omics
Multiomics
Neurons - metabolism
Primates - genetics
single cell
Single-Cell Analysis
single-nucleotide changes
transcription factor
von Economo neuron
Title Single-nucleus multi-omics analyses reveal cellular and molecular innovations in the anterior cingulate cortex during primate evolution
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https://www.clinicalkey.es/playcontent/1-s2.0-S2666979X2400332X
https://dx.doi.org/10.1016/j.xgen.2024.100703
https://www.ncbi.nlm.nih.gov/pubmed/39631404
https://www.proquest.com/docview/3146517551
https://pubmed.ncbi.nlm.nih.gov/PMC11701334
https://doi.org/10.1016/j.xgen.2024.100703
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