Broad transcriptomic dysregulation occurs across the cerebral cortex in ASD

Michael J. Gandal(Children's Hospital of Philadelphia), Jillian R. Haney(University of California, Los Angeles), Brie Wamsley(University of California, Los Angeles), Chloe X. Yap(University of California, Los Angeles), Sepideh Parhami(University of California, Los Angeles), Prashant S. Emani(Yale University), Nathan Chang(Yale University), George Chen(University of California, Los Angeles), Gil D. Hoftman(University of California, Los Angeles), Diego de Alba(University of California, Los Angeles), Gokul Ramaswami(University of California, Los Angeles), Christopher Hartl(University of California, Los Angeles), Arjun Bhattacharya(University of California, Los Angeles), Chongyuan Luo(University of California, Los Angeles), Ting Jin(University of Wisconsin–Madison), Daifeng Wang(University of Wisconsin–Madison), Riki Kawaguchi(Center for Autism and Related Disorders), Diana Quintero(Center for Autism and Related Disorders), Jing Ou(Center for Autism and Related Disorders), Ye Wu(University of California, Los Angeles), Neelroop Parikshak(University of California, Los Angeles), Vivek Swarup(University of California, Irvine), T. Grant Belgard, Mark Gerstein(Yale University), Bogdan Paşaniuc(University of California, Los Angeles), Daniel H. Geschwind(University of California, Los Angeles)
Nature
November 2, 2022
Cited by 286Open Access
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Abstract

Abstract Neuropsychiatric disorders classically lack defining brain pathologies, but recent work has demonstrated dysregulation at the molecular level, characterized by transcriptomic and epigenetic alterations 1–3 . In autism spectrum disorder (ASD), this molecular pathology involves the upregulation of microglial, astrocyte and neural–immune genes, the downregulation of synaptic genes, and attenuation of gene-expression gradients in cortex 1,2,4–6 . However, whether these changes are limited to cortical association regions or are more widespread remains unknown. To address this issue, we performed RNA-sequencing analysis of 725 brain samples spanning 11 cortical areas from 112 post-mortem samples from individuals with ASD and neurotypical controls. We find widespread transcriptomic changes across the cortex in ASD, exhibiting an anterior-to-posterior gradient, with the greatest differences in primary visual cortex, coincident with an attenuation of the typical transcriptomic differences between cortical regions. Single-nucleus RNA-sequencing and methylation profiling demonstrate that this robust molecular signature reflects changes in cell-type-specific gene expression, particularly affecting excitatory neurons and glia. Both rare and common ASD-associated genetic variation converge within a downregulated co-expression module involving synaptic signalling, and common variation alone is enriched within a module of upregulated protein chaperone genes. These results highlight widespread molecular changes across the cerebral cortex in ASD, extending beyond association cortex to broadly involve primary sensory regions.


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