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Potent Inhibition of Mandelate Racemase by Boronic Acids: Boron as a Mimic of a Carbon Acid Center.

Authors :
Sharma AN
Grandinetti L
Johnson ER
St Maurice M
Bearne SL
Source :
Biochemistry [Biochemistry] 2020 Aug 25; Vol. 59 (33), pp. 3026-3037. Date of Electronic Publication: 2020 Aug 10.
Publication Year :
2020

Abstract

Boronic acids have been successfully employed as inhibitors of hydrolytic enzymes. Typically, an enzymatic nucleophile catalyzing hydrolysis adds to the electrophilic boron atom forming a tetrahedral species that mimics the intermediate(s)/transition state(s) for the hydrolysis reaction. We show that para -substituted phenylboronic acids (PBAs) are potent competitive inhibitors of mandelate racemase (MR), an enzyme that catalyzes a 1,1-proton transfer rather than a hydrolysis reaction. The K <subscript>i</subscript> value for PBA was 1.8 ± 0.1 μM, and p -Cl-PBA exhibited the most potent inhibition ( K <subscript>i</subscript> = 81 ± 4 nM), exceeding the binding affinity of the substrate by ∼4 orders of magnitude. Isothermal titration calorimetric studies with the wild-type, K166M, and H297N MR variants indicated that, of the two Brønsted acid-base catalysts Lys 166 and His 297, the former made the greater contribution to inhibitor binding. The X-ray crystal structure of the MR·PBA complex revealed the presence of multiple H-bonds between the boronic acid hydroxyl groups and the side chains of active site residues, as well as formation of a His 297 N <superscript>ε2</superscript> -B dative bond. The dramatic upfield change in chemical shift of 27.2 ppm in the solution-phase <superscript>11</superscript> B nuclear magnetic resonance spectrum accompanying binding of PBA by MR was consistent with an sp <superscript>3</superscript> -hybridized boron, which was also supported by density-functional theory calculations. These unprecedented findings suggest that, beyond substituting boron at carbon centers participating in hydrolysis reactions, substitution of boron at the acidic carbon center of a substrate furnishes a new approach for generating inhibitors of enzymes catalyzing the deprotonation of carbon acid substrates.

Details

Language :
English
ISSN :
1520-4995
Volume :
59
Issue :
33
Database :
MEDLINE
Journal :
Biochemistry
Publication Type :
Academic Journal
Accession number :
32786399
Full Text :
https://doi.org/10.1021/acs.biochem.0c00478