A CRISPRi/a platform in human iPSC-derived microglia uncovers regulators of disease states

Nina M. Dräger(University of California, San Francisco), Sydney M. Sattler(University of California, San Francisco), Cindy Huang(Gladstone Institutes), Olivia M. Teter(University of California, San Francisco), Kun Leng(University of California, San Francisco), Sayed Hadi Hashemi(University of Illinois Urbana-Champaign), Jason Hong(University of California, San Francisco), Giovanni Aviles(University of California, San Francisco), Claire D. Clelland(Gladstone Institutes), Lihong Zhan(Gladstone Institutes), Joe C. Udeochu(Gladstone Institutes), Lay Kodama(Gladstone Institutes), Andrew Singleton(National Institutes of Health), Mike A. Nalls(National Institutes of Health), Justin K. Ichida(University of Southern California), Michael E. Ward(National Institutes of Health), Faraz Faghri(National Institutes of Health), Li Gan(Gladstone Institutes), Martin Kampmann(University of California, San Francisco)
Nature Neuroscience
August 11, 2022
Cited by 248Open Access
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Abstract

Microglia are emerging as key drivers of neurological diseases. However, we lack a systematic understanding of the underlying mechanisms. Here, we present a screening platform to systematically elucidate functional consequences of genetic perturbations in human induced pluripotent stem cell-derived microglia. We developed an efficient 8-day protocol for the generation of microglia-like cells based on the inducible expression of six transcription factors. We established inducible CRISPR interference and activation in this system and conducted three screens targeting the 'druggable genome'. These screens uncovered genes controlling microglia survival, activation and phagocytosis, including neurodegeneration-associated genes. A screen with single-cell RNA sequencing as the readout revealed that these microglia adopt a spectrum of states mirroring those observed in human brains and identified regulators of these states. A disease-associated state characterized by osteopontin (SPP1) expression was selectively depleted by colony-stimulating factor-1 (CSF1R) inhibition. Thus, our platform can systematically uncover regulators of microglial states, enabling their functional characterization and therapeutic targeting.


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