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A cross-disease human microglial framework identifies disease-enriched subsets and tool compounds for microglial polarization.

Tuddenham, J. F.; Taga, M.; Haage, V.; Roostaei, T.; White, C.; Lee, A. J.; Fujita, M.; Khairallah, A.; Green, G.; Hyman, B.; Frosch, M.; Hopp, S.; Beach, T. G.; Corboy, J.; Habib, N.; Klein, H.-U.; Soni, R. K.; Teich, A. F.; Hickman, R. A.; Alcalay, R. N.; Shneider, N.; Schneider, J.; Sims, P. A.; Bennet, D. A.; Olah, M.; Menon, V.; De Jager, P. L.

2022-06-05 neuroscience
10.1101/2022.06.04.494709 bioRxiv
Show abstract

Human microglia play a pivotal role in neurological diseases, but few targeted therapies that directly modulate microglial state or function exist due to an incomplete understanding of microglial heterogeneity. We use single-cell RNA sequencing to profile live human microglia from autopsies or surgical resections across diverse neurological diseases and central nervous system regions. We observe a central divide between oxidative and heterocyclic metabolism and identify subsets associated with antigen presentation, motility, and proliferation. Specific subsets are enriched in susceptibility genes for neurodegenerative diseases or the disease-associated microglial signature. We validate subtypes in situ with an RNAscope-immunofluorescence pipeline and leverage our dataset as a classification resource, finding that iPSC model systems recapitulate substantial in vivo heterogeneity. Finally, we identify and validate candidates for chemically inducing subtype-specific states in vitro, showing that Camptothecin downregulates the transcriptional signature of disease-enriched subsets and upregulates a signature previously shown to be depleted in Alzheimers.

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