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Model-guided engineering of DNA sequences with predictable site-specific recombination rates

Biology

Model-guided engineering of DNA sequences with predictable site-specific recombination rates

Q. Zhang, S. M. Azarin, et al.

This groundbreaking research by Qiuge Zhang, Samira M. Azarin, and Casim A. Sarkar presents a novel integrated method to enhance site-specific recombination (SSR) in synthetic biology, enabling predictable control of SSR reaction rates through engineered DNA sequences. Discover how machine learning and experimental techniques converge to expand the synthetic biology toolkit!... show more
Abstract
Site-specific recombination (SSR) is an important tool in synthetic biology, but its applications are limited by the inability to predictably tune SSR reaction rates. Facile rate manipulation could be achieved by modifying the DNA substrate sequence; however, this approach lacks rational design principles. Here, we develop an integrated experimental and computational method to engineer the DNA attachment sequence attP for predictably modulating the inversion reaction mediated by the recombinase Bxb1. After developing a qPCR method to measure SSR reaction rate, we design, select, and sequence attP libraries to inform a machine-learning model that computes Bxb1 inversion rate as a function of attP sequence. We use this model to predict reaction rates of attP variants in vitro and demonstrate their utility in gene circuit design in Escherichia coli. Our high-throughput, model-guided approach for rationally tuning SSR reaction rates enhances our understanding of recombinase function and expands the synthetic biology toolbox.
Publisher
Nature Communications
Published On
Jul 20, 2022
Authors
Qiuge Zhang, Samira M. Azarin, Casim A. Sarkar
Tags
site-specific recombination
synthetic biology
machine learning
Bxb1 recombinase
DNA engineering
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