Rational Design of Enhanced Nme2Cas9 and Nme2SmuCas9 Nucleases and Base Editors
Bamidele, N.; Ansodaria, A.; Chen, Z.; Cheng, H.; Panwala, R.; Jazbec, E.; Sontheimer, E. J.
Show abstract
CRISPR-Cas genome editing tools enable precise, RNA-guided modification of genomes within living cells. The most clinically advanced genome editors are Cas9 nucleases, but many nuclease technologies provide only limited control over genome editing outcomes. Adenine base editors (ABEs) and cytosine base editors (CBEs) enable precise and efficient nucleotide conversions of A:T-to-G:C and C:G-to-T:A base pairs, respectively. Therapeutic use of base editors (BEs) provides an avenue to correct approximately 30% of human pathogenic variants. Nonetheless, factors such as protospacer adjacent motif (PAM) availability, accuracy, product purity, and delivery limit the full therapeutic potential of BEs. We previously developed Nme2Cas9 and its BE derivatives, including ABEs compatible with single adeno-associated virus (AAV) vector delivery, in part to enable editing near N4CC PAMs. Further engineering yielded domain-inlaid BEs with enhanced activity, as well as Nme2Cas9/SmuCas9 chimeras that target single-cytidine (N4C) PAMs. Here we further enhance Nme2Cas9 and Nme2SmuCas9 editing effectors for improved efficiency and vector compatibility through site-directed mutagenesis and deaminase linker optimization. Finally, we define the editing and specificity profiles of the resulting variants by using paired guide-target libraries.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Cooperativity between Cas9 and hyperactive AID establishes broad and diversifying mutational footprints in base editors 96%
- Precise and efficient C-to-U RNA Base Editing with SNAP-CDAR-S 96%
- New design strategies for ultra-specific CRISPR-Cas13a-based RNA-diagnostic tools with single-nucleotide mismatch sensitivity 95%
Similar papers in this journal
Similar papers in this journal
- High-throughput screens of PAM-flexible Cas9 variants for gene knock-out and transcriptional modulation 95%
- Multimodal CRISPR screens uncover DDX39B as a global repressor of A-to-I RNA editing 95%
- Accelerated drug resistant variant discovery with an enhanced, scalable mutagenic base editor platform 95%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.