Massively parallel characterization of psychiatric disorder-associated and cell-type-specific regulatory elements in the developing human cortex

Chengyu Deng(University of California, San Francisco), Sean Whalen(Gladstone Institutes), Marilyn Steyert(University of California, San Francisco), Ryan Ziffra(University of California, San Francisco), Pawel F. Przytycki(Gladstone Institutes), Fumitaka Inoue(Kyoto University), Daniela A. Pereira(Universidade Federal de Minas Gerais), Davide Capauto(Yale University), Scott Norton(Yale University), Flora M. Vaccarino(Yale University), Alex A. Pollen(University of California, San Francisco), Tomasz J. Nowakowski(University of California, San Francisco), Nadav Ahituv(University of California, San Francisco), Katherine S. Pollard(Gladstone Institutes)
bioRxiv (Cold Spring Harbor Laboratory)
February 15, 2023
Cited by 18Open Access
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Abstract

Abstract Nucleotide changes in gene regulatory elements are important determinants of neuronal development and disease. Using massively parallel reporter assays in primary human cells from mid-gestation cortex and cerebral organoids, we interrogated the cis -regulatory activity of 102,767 sequences, including differentially accessible cell-type specific regions in the developing cortex and single-nucleotide variants associated with psychiatric disorders. In primary cells, we identified 46,802 active enhancer sequences and 164 disorder-associated variants that significantly alter enhancer activity. Activity was comparable in organoids and primary cells, suggesting that organoids provide an adequate model for the developing cortex. Using deep learning, we decoded the sequence basis and upstream regulators of enhancer activity. This work establishes a comprehensive catalog of functional gene regulatory elements and variants in human neuronal development. One Sentence Summary We identify 46,802 enhancers and 164 psychiatric disorder variants with regulatory effects in the developing cortex and organoids.


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