Iron heme enzyme-catalyzed cyclopropanations with diazirines as carbene precursors: Computational explorations of diazirine activation and cyclopropanation mechanism

Abstract

The mechanism of cyclopropanations with diazirines as air-stable and user-friendly alternatives to commonly employed diazo compounds within iron heme enzyme-catalyzed carbene transfer reactions has been studied by means of density functional theory (DFT) calculations of model systems, quantum mechanics/molecular mechanics (QM/MM) calculations, and molecular dynamics (MD) simulations of the iron carbene and the cyclopropanation transition state in the enzyme active site. The reaction is initiated by a direct diazirine-diazo isomerization occurring in the active site of the enzyme. In contrast, an isomerization mechanism proceeding via the formation of a free carbene intermediate in lieu of a direct, one-step isomerization process was observed for model systems. Subsequent reaction with benzyl acrylate takes place through stepwise C–C bond formation via a diradical intermediate, delivering the cyclopropane product. The origin of the observed diastereo- and enantioselectivity in the enzyme was investigated through MD simulations, which indicate a preferred formation of the cis-cyclopropane by steric control.

ICB Affiliated Authors

Authors
Torben Rogge, Qingyang Zhou, Nicholas J. Porter, Frances H. Arnold, K. N. Houk.
Date
Type
Peer-Reviewed Article
Journal
Journal of the American Chemical Society
Volume
146
Number
5
Pages
2959-2966
Emblems