Delineation of the complete reaction cycle of a natural Diels-Alderase

The Diels-Alder reaction is one of the most effective methods for the synthesis of substituted cyclohexenes. The development of protein catalysts for this reaction remains a major priority, affording new sustainable routes to high value target molecules. Whilst a small number of natural enzymes have...

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Veröffentlicht in:Chemical science (Cambridge) 2024-07, Vol.15 (29), p.11572-11583
Hauptverfasser: Maschio, Laurence, Back, Catherine R, Alnawah, Jawaher, Bowen, James I, Johns, Samuel T, Mbatha, Sbusisiwe Z, Han, Li-Chen, Lees, Nicholas R, Zorn, Katja, Stach, James E. M, Hayes, Martin A, van der Kamp, Marc W, Pudney, Christopher R, Burston, Steven G, Willis, Christine L, Race, Paul R
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Sprache:eng
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Zusammenfassung:The Diels-Alder reaction is one of the most effective methods for the synthesis of substituted cyclohexenes. The development of protein catalysts for this reaction remains a major priority, affording new sustainable routes to high value target molecules. Whilst a small number of natural enzymes have been shown capable of catalysing [4 + 2] cycloadditions, there is a need for significant mechanistic understanding of how these prospective Diels-Alderases promote catalysis to underpin their development as biocatalysts for use in synthesis. Here we present a molecular description of the complete reaction cycle of the bona fide natural Diels-Alderase AbyU, which catalyses formation of the spirotetronate skeleton of the antibiotic abyssomicin C. This description is derived from X-ray crystallographic studies of AbyU in complex with a non-transformable synthetic substrate analogue, together with transient kinetic analyses of the AbyU catalysed reaction and computational reaction simulations. These studies reveal the mechanistic intricacies of this enzyme system and establish a foundation for the informed reengineering of AbyU and related biocatalysts. A molecular description of the complete reaction cycle of the bona fide natural Diels-Alderase AbyU is presented, revealing the mechanistic intricacies of this enzyme system.
ISSN:2041-6520
2041-6539
DOI:10.1039/d4sc02908a