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bioRxiv · 10.1101/2024.02.19.580669

Cas9 nickase-mediated contraction of CAG/CTG repeatsat multiple disease loci

Abstract

Expanded CAG/CTG repeats cause over 15 different diseases that all remain without a disease-modifying treatment. Because repeat length accounts for most of the variation in disease severity, contracting them presents an attractive therapeutic avenue. Here, we show that the CRISPR-Cas9 nickase targeted to CAG/CTG repeats leads to efficient contractions in Huntingtons disease patient-derived neurons and astrocytes, and in myotonic dystrophy type 1 patient-derived neurons. The approach is allele-selective and free of detectable off-target mutations. Striatal injection of the Cas9 nickase in a mouse model for Huntingtons disease using adeno-associated viral vectors led to contractions in over half the infected cells. Upon injection, we observed a reduction in the number of inclusion bodies, improved transcriptome, and ameliorated locomotion. The effects were greater than expected from the contractions induced and suggest that non-cell autonomous mechanisms may be involved. Our results provide the proof-of-concept that correction of CAG/CTG repeats can improve Huntingtons disease phenotypes in vivo. One sentence summaryThe Cas9 nickase contracts CAG/CTG repeats at multiple disease loci in patient-derived cells and improves molecular and behavioral phenotypes in HD.

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BibTeXRIS

Murillo, A., Alpaugh, M., Larin, M., Randall, E. L., Heraty, L., Durairaj, R. R., Aston, A. N., Taylor, A. S., Monteys, A. M., Stoberl, N., Heuchan, A. E., Aeschlimann, P., Bhattacharyya, S., Allen, N. D., Puymirat, J., Davidson, B. L., Chicchetti, F., Lelos, M., Dion, V.. 2024-02-21. Cas9 nickase-mediated contraction of CAG/CTG repeatsat multiple disease loci. https://doi.org/10.1101/2024.02.19.580669

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