bioRxiv · 10.1101/2024.10.09.617463
Tunable, self-contained gene dosage control via proteolytic cleavage of CRISPR-Cas systems
Abstract
The ability to modulate gene expression through modular and universal genetic tools like CRISPR-Cas has greatly advanced gene therapy for therapeutics and basic science. Yet, the inherent stochasticity of delivery methods cause variation in target gene expression at the single-cell level, limiting their applicability in systems that require more precise expression. Thus, we implement a modular incoherent feedforward loop based on proteolytic cleavage of Cas to reduce gene expression variability against the variability of vector delivery. We target a genome-integrated marker and demonstrate dosage control of gene activation and repression, post-delivery tuning, and RNA-based compatibility of the system. To illustrate therapeutic relevance, we target the gene RAI1, the haploinsufficiency and triplosensitivity of which cause two autism-related syndromes. We demonstrate dosage-controlled gene activation for both human and mouse Rai1 via viral delivery to patient-derived cell lines and mouse cortical neurons. Overall, we established a robust dosage control circuit for uniform gene expression, beneficial for basic and translational research.
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Katz, N., An, C., Lee, Y.-J., Tycko, J., Zhang, M., Kang, J., Bintu, L., Bassik, M. C., Huang, W.-H., Gao, X. J.. 2024-10-09. Tunable, self-contained gene dosage control via proteolytic cleavage of CRISPR-Cas systems. https://doi.org/10.1101/2024.10.09.617463
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