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June 5, 2026Cell Reports Methods0 citationsOpen Access

Optimizing microhomology-based genome editing by engineering DNA polymerase θ for improved efficiency and reduced on-target indels

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WWWanyi WangMZMeng ZhouTJTianshan Ji

Key Points

  • The aim is to enhance microhomology-mediated genome editing using engineered DNA polymerase θ for greater efficiency and reduced off-target effects.
  • Developed a DNA polymerase θ-based editor (PET) for targeted DNA integration.
  • Assessed the effectiveness of polymerase domain (pPET) and helicase-like domain (hPET) in enhancing editing rates.
  • Conducted next-generation sequencing to evaluate on-target indel rates and precise insertions.
  • pPET achieved a 3-fold increase in knock-in rates compared to conventional SpCas9-mediated editing.
  • Both pPET and hPET reduced on-target indel rates by approximately 30%.
  • pPET increased precise insertions by up to 80% across various genomic loci.

Abstract

Summary Precise genome editing through targeted DNA insertion is critical for gene therapy and biomedical research. While existing methods rely on homology-directed repair (HDR), this process suffers from low efficiency in non-dividing cells. Microhomology-mediated repair provides an alternative but remains intrinsically inefficient. Here, we developed a DNA polymerase θ (Pol θ)-based editor (PET) to enhance kilobase-scale targeted DNA integration across diverse genomic loci and cell types. We demonstrate that polymerase domain (pPET) and helicase-like domain (hPET) independently improve microhomology-mediated editing, with pPET achieving a 3-fold increase in knock-in rates over conventional SpCas9-mediated editing. Next-generation sequencing reveals that pPET and hPET reduce on-target indel rates by ∼30%, while increasing precise insertions by up to 80%. Compared with other Pol θ domain configurations and MMEJ-enhancing factors, pPET exhibits superior performance. These findings establish Pol θ functional domains as effective tools for improving microhomology-driven genome editing and advancing therapeutic applications.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/6a2269c9763171746d5484cfhttps://doi.org/10.1016/j.crmeth.2026.101474
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