How directed evolution reshapes the energy landscape in an enzyme to boost catalysis.
basic_science · Level V
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- Record sourced from PubMed, PMID 33214289.
- Also identified by DOI 10.1126/science.abd3623 and PMC identifier 9616100.
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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.
Medical subject headings
- Biocatalysis
- Computer-Aided Design
- Directed Molecular Evolution
- Enzymes
- Proteins