AI Article Synopsis

  • * While additional enzymes that may act as Diels-Alder reaction catalysts have been identified, their exact mechanisms of action, whether concerted or stepwise, have not been experimentally confirmed.
  • * Recent experiments measuring kinetic isotope effects (KIEs) during both non-enzymatic and enzymatic reactions suggest that SpnF’s catalytic process involves an intermediate state and indicates that the enzyme may influence substrate conformation to enhance catalysis.

Article Abstract

The Diels-Alder reaction is one of the most common methods to chemically synthesize a six-membered carbocycle. While it has long been speculated that the cyclohexene moiety found in many secondary metabolites is also introduced via similar chemistry, the enzyme SpnF involved in the biosynthesis of the insecticide spinosyn A in is the first enzyme for which catalysis of an intramolecular [Formula: see text]-cycloaddition has been experimentally verified as its only known function. Since its discovery, a number of additional standalone [Formula: see text]-cyclases have been reported as potential Diels-Alderases; however, whether their catalytic cycles involve a concerted or stepwise cyclization mechanism has not been addressed experimentally. Here, we report direct experimental interrogation of the reaction coordinate for the [Formula: see text]-carbocyclase SpnF via the measurement of [Formula: see text]-secondary deuterium kinetic isotope effects (KIEs) at all sites of [Formula: see text] rehybridization for both the nonenzymatic and enzyme-catalyzed cyclization of the SpnF substrate. The measured KIEs for the nonenzymatic reaction are consistent with previous computational results implicating an intermediary state between formation of the first and second carbon-carbon bonds. The KIEs measured for the enzymatic reaction suggest a similar mechanism of cyclization within the enzyme active site; however, there is evidence that conformational restriction of the substrate may play a role in catalysis.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5625926PMC
http://dx.doi.org/10.1073/pnas.1710496114DOI Listing

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