Complete computational design of high-efficiency Kemp elimination enzymes.

Listov, Dina; Vos, Eva; Hoffka, Gyula; Hoch, Shlomo Yakir; Berg, Andrej; Hamer-Rogotner, Shelly; Dym, Orly; Kamerlin, Shina Caroline Lynn et al. · Nature · 2025

basic_science · Level V

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Abstract

Until now, computationally designed enzymes exhibited low catalytic rates<sup>1-5</sup> and required intensive experimental optimization to reach activity levels observed in comparable natural enzymes<sup>5-9</sup>. These results exposed limitations in design methodology and suggested critical gaps in our understanding of the fundamentals of biocatalysis<sup>10,11</sup>. We present a fully computational workflow for designing efficient enzymes in TIM-barrel folds using backbone fragments from natural proteins and without requiring optimization by mutant-library screening. Three Kemp eliminase designs exhibit efficiencies greater than 2,000 M<sup>-1</sup> s<sup>-1</sup>. The most efficient shows more than 140 mutations from any natural protein, including a novel active site. It exhibits high stability (greater than 85 °C) and remarkable catalytic efficiency (12,700 M<sup>-1</sup> s<sup>-1</sup>) and rate (2.8 s<sup>-1</sup>), surpassing previous computational designs by two orders of magnitude<sup>1-5</sup>. Furthermore, designing a residue considered essential in all previous Kemp eliminase designs increases efficiency to more than 10<sup>5</sup> M<sup>-1</sup> s<sup>-1</sup> and rate to 30 s<sup>-1</sup>, achieving catalytic parameters comparable to natural enzymes and challenging fundamental biocatalytic assumptions. By overcoming limitations in design methodology<sup>11</sup>, our strategy enables programming stable, high-efficiency, new-to-nature enzymes through a minimal experimental effort.

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