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Updated: May 13, 2025

Enhanced Genome Editing with Cas9 Ribonucleoprotein in Diverse Cells and Organisms
Published on: May 25, 2018
Single-guide RNA Cas9 and enhanced-deletion Cas9 rescue a recurrent USH2A-related splicing defect
Pietro De Angeli1, Salome Spaag1, Stefanida Shliaga1
1University Hospital Tübingen, Centre for Ophthalmology, Institute for Ophthalmic Research, 72076 Tübingen, Germany.
Abstract:
Missplicing of transcripts is a frequent molecular mechanism in a wide range of inherited genetic conditions. Therapeutic splicing correction can be achieved through antisense oligonucleotides; however, they do not enable permanent correction. Concurrently, CRISPR-Cas9 approaches often rely on dual-guide RNA-induced larger deletions-for instance, pseudoexons removal-which raises concerns about higher genotoxicity from multiple double-strand breaks. We therefore investigated single-guide RNA CRISPR-Cas9 approaches to address the recurrent pathogenic USH2A:c.7595-2144A>G deep-intronic variant. Using single-guide RNAs with either Cas9 or Cas9 fused to TREX2 (EDCas9), we restored correct splicing in a minigene assay and patient-derived fibroblasts. Cas9 with single-guide RNAs generated small indels, but their frequency and extent varied between models, resulting in variable productivity with respect to splicing rescue efficacy. In contrast, EDCas9 produced larger, directional deletions with a consistent profile across both models, effectively disrupting missplicing-inducing sequences and ensuring robust splicing correction. Off-target assessments revealed a safe profile for both Cas9 and EDCas9, with EDCas9 additionally preventing targeted translocations. Virus-like particles delivered EDCas9 and a lead gRNA, demonstrating suitability as a transient delivery system. In conclusion, EDCas9 emerges as a flexible and powerful editing approach for addressing the pathogenic USH2A:c.7595-2144A>G variant, paving the way for further therapeutic investigation.
Insights
Engineered Cas9 (EDCas9) with a single-guide RNA effectively corrects splicing defects in the USH2A gene, offering a promising therapeutic strategy for inherited genetic conditions like Usher syndrome.
Area of Science:
- Molecular Biology
- Gene Therapy
- Genetics
Background:
- Transcript missplicing is a common cause of inherited genetic disorders.
- Current antisense oligonucleotide therapies offer transient splicing correction.
- CRISPR-Cas9 approaches using dual-guide RNAs can cause genotoxicity due to large deletions.
Purpose of the Study:
- To investigate single-guide RNA CRISPR-Cas9 strategies for correcting the deep-intronic USH2A:c.7595-2144A>G variant.
- To compare the efficacy and safety of standard Cas9 versus engineered Cas9 fused to TREX2 (EDCas9).
Main Methods:
- Utilized single-guide RNAs with Cas9 and EDCas9 in minigene assays and patient-derived fibroblasts.
- Assessed splicing correction, indel formation, deletion profiles, and off-target effects.
- Investigated virus-like particle delivery of EDCas9 and guide RNA.
Main Results:
- Both Cas9 and EDCas9 restored correct splicing, but Cas9 generated variable small indels.
- EDCas9 produced consistent, larger, directional deletions, effectively disrupting the splicing defect.
- Off-target analysis showed a safe profile for both systems; EDCas9 prevented translocations.
- Virus-like particles demonstrated transient delivery feasibility.
Conclusions:
- EDCas9 provides a robust and consistent method for splicing correction of the USH2A variant.
- EDCas9 offers a flexible and potentially safer gene editing approach for therapeutic development.
- This strategy holds promise for treating Usher syndrome and other genetic conditions caused by splicing errors.
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