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Chemoenzymatic o-Quinone Methide Formation.


ABSTRACT: Generation of reactive intermediates and interception of these fleeting species under physiological conditions is a common strategy employed by Nature to build molecular complexity. However, selective formation of these species under mild conditions using classical synthetic techniques is an outstanding challenge. Here, we demonstrate the utility of biocatalysis in generating o-quinone methide intermediates with precise chemoselectivity under mild, aqueous conditions. Specifically, ?-ketoglutarate-dependent non-heme iron enzymes, CitB and ClaD, are employed to selectively modify benzylic C-H bonds of o-cresol substrates. In this transformation, biocatalytic hydroxylation of a benzylic C-H bond affords a benzylic alcohol product which, under the aqueous reaction conditions, is in equilibrium with the corresponding o-quinone methide. o-Quinone methide interception by a nucleophile or a dienophile allows for one-pot conversion of benzylic C-H bonds into C-C, C-N, C-O, and C-S bonds in chemoenzymatic cascades on preparative scale. The chemoselectivity and mild nature of this platform is showcased here by the selective modification of peptides and chemoenzymatic synthesis of the chroman natural product (-)-xyloketal D.

SUBMITTER: Doyon TJ 

PROVIDER: S-EPMC7193901 | biostudies-literature | 2019 Dec

REPOSITORIES: biostudies-literature

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Chemoenzymatic <i>o</i>-Quinone Methide Formation.

Doyon Tyler J TJ   Perkins Jonathan C JC   Baker Dockrey Summer A SA   Romero Evan O EO   Skinner Kevin C KC   Zimmerman Paul M PM   Narayan Alison R H ARH  

Journal of the American Chemical Society 20191216 51


Generation of reactive intermediates and interception of these fleeting species under physiological conditions is a common strategy employed by Nature to build molecular complexity. However, selective formation of these species under mild conditions using classical synthetic techniques is an outstanding challenge. Here, we demonstrate the utility of biocatalysis in generating <i>o</i>-quinone methide intermediates with precise chemoselectivity under mild, aqueous conditions. Specifically, α-keto  ...[more]

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