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January 17, 2026Nucleic Acids Research0 citationsOpen Access

Triple base editor catalyzes saturation mutation of adenine, cytidine, and guanine

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YWYouming WuTWTing WangZZZiyi Zhang

Key Points

  • The main aim is to develop a triple base editor that allows for simultaneous mutations at multiple DNA bases.
  • Engineering a fusion of adenine base editor with N-methylpurine DNA glycosylase.
  • Conducting mutagenesis experiments in HEK293T cells.
  • Analyzing conversion efficiencies for various base transformations.
  • Achieved up to 80.5% conversion efficiency for A-to-G/C/T mutations.
  • Attained 75.8% efficiency for C-to-T/G/A mutations.
  • Generated 63.4% efficiency for G-to-C/T/A mutations.

Abstract

Abstract Current base editors act on a maximum of two base substrates and generate limited base conversions or transversions, hindering their applicability for inducing DNA sequence diversity. Here, we engineered a triple base editor (named ACG-BEs) using a fusion of adenine base editor with high A/C catalytic activity and evolved N-methylpurine DNA glycosylase. ACG-BEs enables efficient, multiplexed saturation mutagenesis across adenine (A), cytosine (C), and guanine (G), achieving conversion efficiencies of up to 80.5% for A-to-G/C/T, 75.8% for C-to-T/G/A, and 63.4% for G-to-C/T/A in HEK293T cells. Leveraging ACG-BEs, we identify novel mutations in the HBG1/2 promoter region that confer efficient activation of γ-globin expression in HUDEP-2 cells—a promising advancement for therapeutic strategies targeting hemoglobinopathies. These findings highlight ACG-BEs as a cutting-edge platform for multiplexed saturation mutagenesis, offering broad applications in genetic screening and therapeutic base mutation introduction through enhanced DNA sequence diversity.

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Cite This Study

Wu et al. (2025) studied this question.

synapsesocial.com/papers/696b2616d2a12237a93496b7https://doi.org/10.1093/nar/gkaf1423
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