How directed evolution reshapes the energy landscape in an enzyme to boost catalysis

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Abstract

The advent of biocatalysts designed computationally and optimized by laboratory evolution provides an opportunity to explore molecular strategies for augmenting catalytic function. Applying a suite of nuclear magnetic resonance, crystallography, and stopped-flow techniques to an enzyme designed for an elementary proton transfer reaction, we show how directed evolution gradually altered the conformational ensemble of the protein scaffold to populate a narrow, highly active conformational ensemble and accelerate this transformation by nearly nine orders of magnitude. Mutations acquired during optimization enabled global conformational changes, including high-energy backbone rearrangements, that cooperatively organized the catalytic base and oxyanion stabilizer, thus perfecting transition-state stabilization. The development of protein catalysts for many chemical transformations could be facilitated by explicitly sampling conformational substates during design and specifically stabilizing productive substates over all unproductive conformations.

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Otten, R., Pádua, R. A. P., Bunze, H. A., Nguyen, V., Pitsawong, W., Patterson, M., … Kern, D. (2020). How directed evolution reshapes the energy landscape in an enzyme to boost catalysis. Science, 370(6523), 1442–1446. https://doi.org/10.1126/science.abd3623

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