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Updated: Sep 4, 2026

Gene Digital Circuits Based on CRISPR-Cas Systems and Anti-CRISPR Proteins
Published on: October 18, 2022
Optimization of AsCas12f1-Mediated Long-Term Gene Repression
Yangyang Sun1, Linyun Li1, Xiangnan Wang2
1School of Life Science and Technology, ShanghaiTech University, Shanghai, China.
Abstract:
A compact and programmable epigenome editor can be utilized for long-term gene silencing, which becomes a powerful tool for biological research or biomedical applications. Here, we present an enhanced CRISPR-based epigenome editor based on deactivated AsCas12f1 (dAsCas12f1) variants, which incorporate epigenetic modulators for histone methylation and DNA methylation. First, we compared the gene silencing achieved by various dCas12f1 variants fused with Krüppel-associated box (KRAB). The optimized variant dCas12f1-V8.1-KRAB, named AminiCRi, demonstrated high efficacy of gene silencing, which is comparable to dSpCas9-KRAB. To establish a miniature Cas-based system for long-term silencing, we generated dCas12f1-V8.1 fused with KRAB and DNA methyltransferases (Dnmt3A/3L), named AminiCRoff. AminiCRoff enables simultaneous deposition of repressive histone H3K9 trimethylation marks and DNA methylation at target loci. Transient delivery of AminiCRoff allows stable suppression of H2B gene expression to 30% of baseline levels up to 50 days examined, which is more durable than dSpCas9-based CRISPRoff. The compact size of the system is potentially packed into a single Adeno-associated virus (AAV), which is frequently used for gene therapy. Here we developed a highly efficient miniature Cas-based epigenetic editor for long-term gene silencing, which provides a good foundation for epigenetic therapy of genetic or chronic diseases with abnormal gene expression.

