Abstract

The supramolecular approach is among the most convenient methodologies for creating artificial metalloenzymes (ArMs). Usually this approach involves the binding of a transition metal ion complex to a biomolecular scaffold via its ligand, which also modulates the catalytic properties of the metal ion. Herein, we report ArMs based on the proteins CgmR, RamR and QacR from the TetR family of multidrug resistance regulators (MDRs) and Cu2+ ions, assembled without the need of a ligand. These ArMs catalyze the enantioselective vinylogous Friedel‐Crafts alkylation reaction with up to 75 % ee. Competition experiments with ethidium and rhodamine 6G confirm that the reactions occur in the chiral environment of the hydrophobic pocket. It is proposed that the Cu2+‐substrate complex is bound via a combination of electrostatic and π‐stacking interactions provided by the second coordination sphere. This approach constitutes a fast and straightforward way to assemble metalloenzymes and may facilitate future optimization of the protein scaffolds via mutagenesis or directed evolution approaches.

Highlights

  • Cu2 + ions, assembled without the need of a ligand

  • The field of artificial metalloenzymes (ArMs) has the potential to expand dramatically the possibilities of enzyme engineering towards achieving biocatalysis of reactions that have no equivalent in nature.[1,2,3]

  • ArMs aim to combine the high efficiency of natural enzymes, with the broad reaction scope characteristic of homogeneous transition metal catalysts

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Summary

Introduction

Cu2 + ions, assembled without the need of a ligand. These ArMs catalyze the enantioselective vinylogous Friedel-Crafts alkylation reaction with up to 75 % ee. The reaction in presence of Cu(NO3)2 alone, without protein, resulted in formation of a racemic mixture of the Friedel-Crafts product in 22% yield, indicating that the Cu2+ ion is required for activation of the imidazole substrate.

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