Artemis Regulates Homology-Independent Prime Editing (PRINS) for Enhanced Genomic Insertions
Dacquay, L. C.; Choong, O. K.; Membrino, A.; Lundin, A.; Akrap, N.; Kollner, J.; Hsieh, P.-P.; Gordon, E.; Mustfa, S.; Saka, S.; Crysnanto, D.; Karlsson, F.; Dahlen, A.; Thom, G.; Lindgren, J.; Baran, A.; Firth, M.; Peterka, M.; Svikovic, S.; Sienski, G.; Maresca, M.; Machleidt, T.; Schwinn, M. K.
Show abstract
Nuclease-based prime editing (PEn) offers enhanced genomic insertion efficiency compared to nickase-based prime editors, but its reliance on double-strand break (DSB) repair leads to complex and often unpredictable on-target indel distributions. PRINS editing, a PEn variant utilizing springRNAs, uniquely relies on non-homologous end joining (NHEJ) for insertions, providing an insertion-only strategy ideal for functional protein tagging or serine integrase landing pad insertions, yet it suffers from inherent imprecision. Here, we identify the DNA repair factor Artemis (DCLRE1C) as a key regulator of PEn-generated indel profiles, particularly in springRNA-mediated PRINS editing. Through a targeted genetic screen, we show that the absence of Artemis significantly shifts indel distributions away from deletions and shorter truncations towards longer, functionally acceptable insertions. Our data indicates that Artemis cleaves PEn-generated 3-overhangs in a length-dependent manner, with its impact increasing for longer reverse-transcribed overhangs. This understanding reveals that regulating Artemis activity can improve insertion frequency specifically for PRINS. We develop and validate robust epigenetic (CRISPRoff) and antisense oligonucleotide (ASO) strategies to effectively silence/knockdown Artemis expression, successfully recapitulating the beneficial PRINS editing outcomes observed in Artemis-deficient cells. Leveraging these insights, we show that Artemis modulation can enhance endogenous protein tagging in cells, including challenging hiPSC-derived non-dividing cardiomyocytes. Our findings support Artemis as a key regulator of PRINS editing outcomes and present a tunable strategy to optimize insertion efficiency for diverse genomic engineering and therapeutic applications.
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