A high-fidelity CRISPR-Cas13 system improves abnormalities associated with C9ORF72-linked ALS/FTD
Abstract
Abstract An abnormal expansion of a GGGGCC (G 4 C 2 ) hexanucleotide repeat in the C9ORF72 gene is the most common genetic cause of amyotrophic lateral sclerosis (ALS) and frontotemporal dementia (FTD), two debilitating neurodegenerative disorders driven in part by gain-of-function mechanisms involving transcribed forms of the repeat expansion. By utilizing a Cas13 variant with reduced collateral effects, we develop here a high-fidelity RNA-targeting CRISPR-based system for C9ORF72-linked ALS/FTD. When delivered to the brain of a transgenic rodent model, this Cas13-based platform curbed the expression of the G 4 C 2 repeat-containing RNA without affecting normal C9ORF72 levels, which in turn decreased the formation of RNA foci, reduced the production of a dipeptide repeat protein, and reversed transcriptional deficits. This high-fidelity system possessed improved transcriptome-wide specificity compared to its native form and mediated targeting in motor neuron-like cells derived from a patient with ALS. These results lay the foundation for the implementation of RNA-targeting CRISPR technologies for C9ORF72-linked ALS/FTD.
Article Details
Authors (12)
Tristan X. McCallister
Colin K. W. Lim
Mayuri Singh
Sijia Zhang
Najah S. Ahsan
William M. Terpstra
Alisha Y. Xiong
M. Alejandra Zeballos C
Jackson E. Powell
Jenny Drnevich
University of Illinois Urbana-Champaign, Roy J. Carver Biotechnology Center
Yifei Kang
Thomas Gaj