Single-cell multiomic human brain atlas reveals regulatory drivers of cortical regionality
Abstract
Abstract Distinct regional functionality of the human cortex is orchestrated by diverse cellular and molecular processes, yet the underlying regulatory mechanisms remain poorly understood. We performed multiomic single-cell and spatial characterization of nine regions of the human cortex to define the gene regulatory networks and transcription factors that govern cell-type and region specificity. With the combined data of over three million cells, two striking patterns of cortical neuron specialization were uncovered: a rostral-caudal spatial pattern of calcium regulatory machinery, and subunit switching of multiple signaling receptor families across the transmodal-sensory axis. Gene regulatory network analysis revealed putative transcriptional regulators of cortical neuron specialization with cell-type- and region-specific gene regulation patterns. While regionalization was observed in gene expression, chromatin accessibility, and spatial distributions, these modalities exhibited distinct cortical patterns. Our findings illuminate critical neuronal pathways that vary throughout the cortex and the gene regulatory networks that establish cortical regionalization in the human brain.
Article Details
Authors (22)
Carter R. Palmer
Jinghui Song
Bing Yang
Chien-Ju Chen
Dinh Diep
Kimberly Conklin
Nongluk Plongthongkum
Hannah S. Indralingam
Department of Cellular and Molecular Medicine, University of California, San Diego School of Medicine, La Jolla, CA, USA.
Christine S. Liu
Joshua Kurtz
Qiwen Hu
Department of Biomedical Informatics, Harvard Medical School
Linnea Ransom
Anis Shahnaee
Annie Hiniker
Rebecca D. Hodge
C. Dirk Keene
Ed Lein
Peter Kharchenko
Nathan R. Zemke
Department of Cellular and Molecular Medicine, University of California, San Diego School of Medicine, La Jolla, CA, USA.
Jerold Chun
Bing Ren
Kun Zhang