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PRMT5 is required for full-length HTT expression by repressing multiple proximal intronic polyadenylation sites

ALQAZZAZ, M.; Ciamponi, F. E.; Ho, J. C.; Maron, M. I.; Yadav, M.; Sababi, A. M.; Macleod, G.; Ahmadi, M.; Bullivant, G.; Tano, V.; Langley, S. R.; Osuna, M. S.; Sachamitr, P.; Kushida, M.; Richards, L. M.; Bardile, C. F.; Pouladi, M.; Pugh, T.; Tyers, M.; Angers, S.; Dirks, P. B.; Bader, G.; Massirer, K. B.; Barsyte-Lovejoy, D.; Shechter, D.; Harding, R. J.; Arrowsmith, C.; Prinos, P.

2024-03-14 neuroscience
10.1101/2024.03.14.584861 bioRxiv
Show abstract

Expansion of the CAG trinucleotide repeat tract in exon 1 of the Huntingtin (HTT) gene above a threshold of [~]36 repeats causes Huntingtons disease (HD) through the expression of a polyglutamine-expanded form of the HTT protein. This mutation triggers wide-ranging cellular and biochemical pathologies leading to cognitive, motor, and psychiatric symptoms in HD patients. As accurate splicing is required to produce the full-length HTT protein of [~]348 kDa, targeting HTT splicing with small molecule drugs is a compelling approach to lower HTT protein levels to treat HD, and splice modulators are being tested in the clinic. Here, we identify PRMT5 as a novel regulator of HTT mRNA splicing and alternative polyadenylation. PRMT5 inhibition disrupts the splicing of HTT introns 9 and 10, leading to activation of multiple proximal intronic polyadenylation sites within these introns and promoting premature termination, cleavage and polyadenylation (PCPA) of the HTT mRNA, thus lowering total HTT protein levels. We also detected increasing levels of these truncated, intron-containing HTT transcripts across a series of neuronal differentiation samples which correlated with lower PRMT5 expression. Notably, PRMT5 inhibition in glioblastoma (GBM) stem cells potently induced neuronal differentiation. We posit that PRMT5-mediated regulation of intronic polyadenylation, premature termination and cleavage of the HTT mRNA modulates HTT expression and plays an important role during embryonic development and neuronal differentiation.

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