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bioRxiv · 10.1101/2021.11.05.467423

A truncated reverse transcriptase enhances prime editing by split AAV vectors

Abstract

Prime editing is a new CRISPR-based genome editing technology that relies on the prime editor (PE), a fusion protein of Cas9-nickase and M-MLV reverse transcriptase (RT), and a prime editing guide RNA (pegRNA) that serves both to target PE to the desired genomic locus and to carry the edit to be introduced. Here, we make advancements to the RT moiety to improve prime editing efficiencies and truncations to mitigate issues with AAV viral vector size limitations, which currently do not support efficient delivery of the large prime editing components. These efforts include RT variant screening, codon optimization, and PE truncation by removal of the RNase H domain and further trimming. This led to a codon-optimized and size-minimized PE that has an expression advantage (1.4x fold) and size advantage (621 bp shorter). In addition, we optimize the split intein PE system and identify Rma-based Cas9 split sites (573-574 and 673-674) that combined with the truncated PE delivered by dual AAVs result in superior AAV titer and prime editing efficiency. This novel minimized PE provides great value to AAV-based delivery applications in vivo.

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BibTeXRIS

Gao, Z., Haldrup, J., Ravendran, S., Mikkelsen, N. S., Mikkelsen, J. G., Bak, R. O.. 2021-11-05. A truncated reverse transcriptase enhances prime editing by split AAV vectors. https://doi.org/10.1101/2021.11.05.467423

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