Death induced by survival gene elimination (DISE) contributes to neurotoxicity in Alzheimer's disease
Paudel, B.; Jeong, S.-Y.; Martinez, C. P.; Rickman, A.; Haluck-Kangas, A.; Bartom, E. T.; Frederiksen, K.; Affaneh, A.; Kessler, J. A.; Mazzulli, J. R.; Murmann, A. E.; Rogalski, E.; Geula, C.; Ferreira, A.; Heckmann, B. L.; Green, D. R.; Sadleir, K. R.; Vassar, R.; Peter, M. E.
Show abstract
Alzheimers disease (AD) is characterized by progressive neurodegeneration, but the specific events that cause cell death remain poorly understood. Death Induced by Survival gene Elimination (DISE) is a cell death mechanism mediated by short (s) RNAs acting through the RNA induced silencing complex (RISC). DISE is thus a form of RNA interference, in which G-rich 6mer seed sequences in the sRNAs (position 2-7) target hundreds of C-rich 6mer seed matches in genes essential for cell survival, resulting in the activation of cell death pathways. Here, using Argonaute precipitation and RNAseq (Ago-RP-Seq), we analyze RISC-bound sRNAs to quantify 6mer seed toxicity in several model systems. In mouse AD models and aging brain, in induced pluripotent stem cell-derived neurons from AD patients, and in cells exposed to A{beta}42 oligomers, RISC-bound sRNAs show a shift to more toxic 6mer seeds compared to controls. In contrast, in brains of "SuperAgers", humans over age 80 who have superior memory performance, RISC-bound sRNAs are shifted to more nontoxic 6mer seeds. Cells depleted of nontoxic sRNAs are sensitized to A{beta}42-induced cell death, and reintroducing nontoxic RNAs is protective. Altogether, the correlation between DISE and A{beta}42 toxicity suggests that increasing the levels of nontoxic miRNAs in the brain or blocking the activity of toxic RISC-bound sRNAs could ameliorate neurodegeneration.
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