Directed Evolution Enables Dynamic Control of Transient Intermediates for Anti-Markovnikov Wacker-Tsuji-Type Oxidation of Aliphatic Alkenes

Klaus C, Soler J, Kubik G, Gumulya Y, Hui Y, Watkins-Dulaney EJ, Heitland M-L, Sommer M, Klein A, Kowal J, Niemann H, et al. (2024)
ChemRxiv.

Preprint | Veröffentlicht | Englisch
 
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Autor*in
Klaus, CindyUniBi; Soler, Jordi; Kubik, Grzegorz; Gumulya, Yosephine; Hui, Yue; Watkins-Dulaney, Ella J.; Heitland, Max-Luca; Sommer, Marc; Klein, AlinaUniBi; Kowal, JuliaUniBi ; Niemann, HartmutUniBi ; Arnold, Frances H.
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Abstract / Bemerkung

Controlling the dynamic behavior of highly reactive fleeting intermediates is an intriguing concept to generate selectivity in competing reaction pathways. Here we report the directed evolution of a P450 enzyme for anti-Markovnikov-selective Wacker-Tsuji-type oxidation of aliphatic alkenes. This reaction is a long-standing challenge in catalysis due to its unfavorable energetics and competing reactions. The evolved aMOx-A enzyme performs anti-Markovnikov oxidation of aliphatic alkenes with several hundred turnovers and possesses kinetic parameters comparable to those of average natural enzymes. The biocatalyst guides an oxo-transfer process through multiple competing reactions, including bifurcating reaction pathways that originate after a rate-limiting transition state. Chemoselectivity of aMOx-A arises from controlling substrate conformations as well as dynamics of reactive intermediates. This includes accessing and controlling a fleeting carbocation intermediate that does not correspond to a minimum on the potential energy surface. Engineering of aMOx-A highlights how directed enzyme evolution optimizes unique catalytic processes that have largely eluded efficient catalysis.

Erscheinungsjahr
2024
Zeitschriftentitel
ChemRxiv
Seite(n)
16
Page URI
https://pub.uni-bielefeld.de/record/2991946

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Klaus C, Soler J, Kubik G, et al. Directed Evolution Enables Dynamic Control of Transient Intermediates for Anti-Markovnikov Wacker-Tsuji-Type Oxidation of Aliphatic Alkenes. ChemRxiv. 2024.
Klaus, C., Soler, J., Kubik, G., Gumulya, Y., Hui, Y., Watkins-Dulaney, E. J., Heitland, M. - L., et al. (2024). Directed Evolution Enables Dynamic Control of Transient Intermediates for Anti-Markovnikov Wacker-Tsuji-Type Oxidation of Aliphatic Alkenes. ChemRxiv. https://doi.org/10.26434/chemrxiv-2024-j0229
Klaus, Cindy, Soler, Jordi, Kubik, Grzegorz, Gumulya, Yosephine, Hui, Yue, Watkins-Dulaney, Ella J., Heitland, Max-Luca, et al. 2024. “Directed Evolution Enables Dynamic Control of Transient Intermediates for Anti-Markovnikov Wacker-Tsuji-Type Oxidation of Aliphatic Alkenes”. ChemRxiv.
Klaus, C., Soler, J., Kubik, G., Gumulya, Y., Hui, Y., Watkins-Dulaney, E. J., Heitland, M. - L., Sommer, M., Klein, A., Kowal, J., et al. (2024). Directed Evolution Enables Dynamic Control of Transient Intermediates for Anti-Markovnikov Wacker-Tsuji-Type Oxidation of Aliphatic Alkenes. ChemRxiv.
Klaus, C., et al., 2024. Directed Evolution Enables Dynamic Control of Transient Intermediates for Anti-Markovnikov Wacker-Tsuji-Type Oxidation of Aliphatic Alkenes. ChemRxiv.
C. Klaus, et al., “Directed Evolution Enables Dynamic Control of Transient Intermediates for Anti-Markovnikov Wacker-Tsuji-Type Oxidation of Aliphatic Alkenes”, ChemRxiv, 2024.
Klaus, C., Soler, J., Kubik, G., Gumulya, Y., Hui, Y., Watkins-Dulaney, E.J., Heitland, M.-L., Sommer, M., Klein, A., Kowal, J., Niemann, H., Arnold, F.H., Garcia-Borràs, M., Hammer, S.: Directed Evolution Enables Dynamic Control of Transient Intermediates for Anti-Markovnikov Wacker-Tsuji-Type Oxidation of Aliphatic Alkenes. ChemRxiv. (2024).
Klaus, Cindy, Soler, Jordi, Kubik, Grzegorz, Gumulya, Yosephine, Hui, Yue, Watkins-Dulaney, Ella J., Heitland, Max-Luca, Sommer, Marc, Klein, Alina, Kowal, Julia, Niemann, Hartmut, Arnold, Frances H., Garcia-Borràs, Marc, and Hammer, Stephan. “Directed Evolution Enables Dynamic Control of Transient Intermediates for Anti-Markovnikov Wacker-Tsuji-Type Oxidation of Aliphatic Alkenes”. ChemRxiv (2024).
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Preprint: 10.26434/chemrxiv-2024-j0229

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