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◆ Nucleic Acids Research2026-03-19· Biology

Deep learning-guided dual-fitness evolution of T7 RNA polymerase for enhanced stability and activity

Fan Jiang, Liqi Kang, Mingchen Li, Bozitao Zhong, Xiaoxia Chen, Banghao Wu, Mengrong Li, Yuanxi Yu, Liang Hong

原始摘要(英文原文)· Original abstract
In protein engineering, simultaneously improving multiple fitness attributes is a critical yet challenging goal, largely due to the vastness of sequence space, the multifaceted interplay among different traits, and the complexity of non-linear mutational effects (epistasis). To address this, we developed a data-driven evolutionary strategy that couples in silico deep learning with a wet-lab multi-objective selection workflow. By employing independent model fine-tuning for distinct traits, our approach facilitates navigating the fitness landscape to identify beneficial mutation combinations. We applied this strategy to T7 RNA polymerase (T7 RNAP), performing dual-fitness evolution to simultaneously enhance thermostability and activity at elevated temperatures. After five rounds of iterative evolution, we obtained T7 RNAP mutants exhibiting a melting temperature (Tm) increase of >10°C, a 60-fold enhancement in high-temperature activity, and a 70% reduction in by-product content. Validation in cell transfection demonstrated their potential for producing high-quality mRNA for industrial applications.
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Deep learning-guided dual-fitness evolution of T7 RNA polymerase for enhanced stability and activity — 科研速览 Science Skim