bioRxiv · 10.1101/2023.12.11.566423
Loss of Adaptive DNA Breaks in Alzheimer's Disease Brains
Abstract
BackgroundDNA breaks accumulate in Alzheimers disease (AD) brains. While their role as true genomic lesions is recognized, DNA breaks also support cognitive function by facilitating the expression of activity-dependent immediate early genes (IEGs). This process involves TOP2B, a DNA topoisomerase that catalyzes the formation of DNA double-strand breaks (DSBs). ObjectiveTo characterize how AD impacts adaptive DNA breaks at nervous system genes. MethodsWe leveraged the ability of DNA single- and double-strand breaks to activate poly(ADP-ribose) polymerases (PARPs) that conjugate poly(ADP-ribose) (PAR) to adjacent proteins. To characterize the genomic sites harboring DNA breaks in AD brains, nuclei extracted from 3 AD and 3 non-demented (ND) autopsy brains (frontal cortex, all male donors, age 78 to 91 years of age) were analyzed through CUT&RUN in which we targeted PAR with subsequent DNA sequencing. ResultsAlthough the AD brains contained 19.9 times more PAR peaks than the ND brains, PAR peaks at nervous system genes were profoundly lost in AD brains, and the expression of these genes was downregulated. This result is consistent with our previous CUT&RUN targeting {gamma}H2AX, which marks DNA double-strand breaks (DSBs). In addition, TOP2B expression was significantly decreased in the AD brains. ConclusionAlthough AD brains contain a net increase in DNA breaks, adaptive DNA breaks at nervous system genes are lost in AD brains. This could potentially reflect diminished TOP2B expression and contribute to impaired neuron function and cognition in AD patients.
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Zhang, X., Haeri, M., Swerdlow, R. H., Wang, N.. 2023-12-12. Loss of Adaptive DNA Breaks in Alzheimer's Disease Brains. https://doi.org/10.1101/2023.12.11.566423
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