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Mapping Bacterial Functional Networks and Pathways in Escherichia Coli using Synthetic Genetic Arrays
Published on: November 12, 2012
A self-iterative orthogonal base-editing platform enables multiplex N-to-N diversification and genome-scale
Xiangrui Fan1, Liya Liang1, Hongle Wang1
1MOE Key Laboratory of Bio-Intelligent Manufacturing, School of Bioengineering, Dalian University of Technology, Dalian 116024, China.
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Base editing enables precise genome modification without double-strand breaks but remains limited by narrow editing windows, DNA repair pathway biases, and restricted nucleotide diversity. Here, we report MUTATOR, a MUlTiplexAble and self-iTerative ORthogonal base-editing platform that enables N-to-N diversification in Escherichia coli. MUTATOR combines CWBE and ABE with iterative editing on two complementary DNA strands, thereby overcoming endogenous DNA repair constraints and expanding A-to-N and C-to-N editing outcomes across both strands. This strategy substantially expands accessible nucleotide outcomes, codon variants, and amino-acid diversity within existing editing windows relative to conventional editors. Using four gRNAs, MUTATOR facilitated four-site editing of ompR, generating 84 distinct amino-acid combinations and 252 codon combinations, with the synonymous OmpR_P160P variant increasing isobutanol production by up to 56.2%. We further applied MUTATOR to a 151-gene library encompassing transcriptional regulators, translation factors, DNA repair proteins, ribosomal components, and NAD(P)H-associated metabolic genes, identifying single and combinatorial mutations that markedly enhanced cell growth and ethanol utilization when ethanol was used as the sole carbon source. Together, these results establish MUTATOR as a broadly applicable platform for genome-wide diversification, functional dissection, and rapid engineering of industrial microbial chassis.
