bioRxiv · 10.1101/2024.01.29.577284
Disrupting Homologous Recombination or Single-Strand Annealing Significantly Hinders CRISPR-Cas12a-Assisted Nonhomologous End-Joining Gene Editing Efficiency in Mycobacterium abscessus
Abstract
Mycobacterium abscessus, a fast-growing, non-tuberculous mycobacterium resistant to most antimicrobial drugs, causes many types of serious infections in humans, posing a significant public health challenge. Currently, effective genetic manipulation tools for M. abscessus are still being developed, which hampers research and therapeutic development. However, the clustered regularly interspaced short palindromic repeats (CRISPR) - associated protein (Cas) systems have emerged as promising methods for generating highly specific double-strand breaks (DSBs) in its genome. These DSBs can be repaired by the error-prone nonhomologous end joining (NHEJ) mechanism, facilitating targeted gene editing. Here, our study marks a pioneering application of the CRISPR-NHEJ strategy in M. abscessus. Additionally, we discovered that NrgA from Mycobacterium marinum is crucial for the repair of DSBs caused by the CRISPR-Cas system in M. abscessus. Finally, contrary to previous findings, our study also indicates that inhibiting or overexpressing homologous recombination/single-strand annealing significantly decreases the efficiency of NHEJ repair in M. abscessus. This discovery challenges established perspectives and suggests that the NHEJ repair in M. abscessus may require the involvement of components from homologous recombination and single-strand annealing, demonstrating the complex interactions among the three DSB repair pathways in M. abscessus. Impact statementThere are still very few genetic manipulation tools available for Mycobacterium abscessus. Here we report the successful application of CRISPR-Cas12a-assisted nonhomologous end joining (NHEJ) in efficient gene editing in M. abscessus. Contrary to previous research suggesting that homologous recombination (HR) inhibition may enhance such editing efficiency in other Mycobacterium species, our results showed that disruption or overexpression of either HR or single-strand annealing not only failed to enhance but also significantly reduced the gene editing efficiency in M. abscessus. This suggests that NHEJ repair in M. abscessus may require components from both HR and single-strand annealing, highlighting a complex interaction among the DSB repair pathways in M. abscessus.
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Zeng, S., Ju, Y., Alam, M. S., Lu, Z., Hameed, H. M. A., Li, L., Tian, X., Fang, C., Fang, X., Ding, J., Wang, X., Hu, J., Wang, S., Zhang, T.. 2024-01-30. Disrupting Homologous Recombination or Single-Strand Annealing Significantly Hinders CRISPR-Cas12a-Assisted Nonhomologous End-Joining Gene Editing Efficiency in Mycobacterium abscessus. https://doi.org/10.1101/2024.01.29.577284
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