Impact of schizophrenia GWAS loci converge onto distinct pathways in cortical interneurons vs glutamatergic neurons during development

全基因组关联研究 生物 遗传学 谷氨酸的 基因座(遗传学) 神经科学 精神分裂症(面向对象编程) 基因 单核苷酸多态性 医学 基因型 受体 谷氨酸受体 精神科
作者
Dongxin Liu,Amy Zinski,Akanksha Mishra,Haneul Noh,Ho‐Jin Park,Yiren Qin,Oshoname Olorife,James M. Park,Chiderah P. Abani,Joy S. Park,Janice Fung,Farah Sawaqed,Joseph T. Coyle,Eli A. Stahl,Jaroslav Bendl,John F. Fullard,Panos Roussos,Xiaolei Zhang,Patric K. Stanton,Changhong Yin
出处
期刊:Molecular Psychiatry [Springer Nature]
卷期号:27 (10): 4218-4233 被引量:10
标识
DOI:10.1038/s41380-022-01654-z
摘要

Remarkable advances have been made in schizophrenia (SCZ) GWAS, but gleaning biological insight from these loci is challenging. Genetic influences on gene expression (e.g., eQTLs) are cell type-specific, but most studies that attempt to clarify GWAS loci’s influence on gene expression have employed tissues with mixed cell compositions that can obscure cell-specific effects. Furthermore, enriched SCZ heritability in the fetal brain underscores the need to study the impact of SCZ risk loci in specific developing neurons. MGE-derived cortical interneurons (cINs) are consistently affected in SCZ brains and show enriched SCZ heritability in human fetal brains. We identified SCZ GWAS risk genes that are dysregulated in iPSC-derived homogeneous populations of developing SCZ cINs. These SCZ GWAS loci differential expression (DE) genes converge on the PKC pathway. Their disruption results in PKC hyperactivity in developing cINs, leading to arborization deficits. We show that the fine-mapped GWAS locus in the ATP2A2 gene of the PKC pathway harbors enhancer marks by ATACseq and ChIPseq, and regulates ATP2A2 expression. We also generated developing glutamatergic neurons (GNs), another population with enriched SCZ heritability, and confirmed their functionality after transplantation into the mouse brain. Then, we identified SCZ GWAS risk genes that are dysregulated in developing SCZ GNs. GN-specific SCZ GWAS loci DE genes converge on the ion transporter pathway, distinct from those for cINs. Disruption of the pathway gene CACNA1D resulted in deficits of Ca2+ currents in developing GNs, suggesting compromised neuronal function by GWAS loci pathway deficits during development. This study allows us to identify cell type-specific and developmental stage-specific mechanisms of SCZ risk gene function, and may aid in identifying mechanism-based novel therapeutic targets.
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