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Mapping the Complex Genetic Landscape of Human Neurons

Sun, C.; Kathuria, K.; Emery, S. B.; Kim, B.; Burbulis, I. E.; Shin, J.; Brain Somatic Mosaicism Network, ; Weinberger, D. R.; Moran, J. V.; Kidd, J. M.; Mills, R. E.; McConnell, M. J.

2023-03-07 neuroscience
10.1101/2023.03.07.531594 bioRxiv
Show abstract

When somatic cells acquire complex karyotypes, they are removed by the immune system. Mutant somatic cells that evade immune surveillance can lead to cancer. Neurons with complex karyotypes arise during neurotypical brain development, but neurons are almost never the origin of brain cancers. Instead, somatic mutations in neurons can bring about neurodevelopmental disorders, and contribute to the polygenic landscape of neuropsychiatric and neurodegenerative disease. A subset of human neurons harbors idiosyncratic copy number variants (CNVs, "CNV neurons"), but previous analyses of CNV neurons have been limited by relatively small sample sizes. Here, we developed an allele-based validation approach, SCOVAL, to corroborate or reject read-depth based CNV calls in single human neurons. We applied this approach to 2,125 frontal cortical neurons from a neurotypical human brain. This approach identified 226 CNV neurons, as well as a class of CNV neurons with complex karyotypes containing whole or substantial losses on multiple chromosomes. Moreover, we found that CNV location appears to be nonrandom. Recurrent regions of neuronal genome rearrangement contained fewer, but longer, genes.

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