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Catalytic Hydrolysis Mechanism of Cocaine by Human Carboxylesterase 1: An Orthoester Intermediate Slows Down the Reaction

Overview
Journal Molecules
Publisher MDPI
Specialty Biology
Date 2019 Nov 14
PMID 31717501
Authors
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Abstract

Human carboxylesterase 1 (hCES1) is a major carboxylesterase in the human body and plays important roles in the metabolism of a wide variety of substances, including lipids and drugs, and therefore is attracting more and more attention from areas including lipid metabolism, pharmacokinetics, drug-drug interactions, and prodrug activation. In this work, we studied the catalytic hydrolysis mechanism of hCES1 by the quantum mechanics computation method, using cocaine as a model substrate. Our results support the four-step theory of the esterase catalytic hydrolysis mechanism, in which both the acylation stage and the deacylation stage include two transition states and a tetrahedral intermediate. The roles and cooperation of the catalytic triad, S221, H468, and E354, were also analyzed in this study. Moreover, orthoester intermediates were found in hCES1-catalyzed cocaine hydrolysis reaction, which significantly elevate the free energy barrier and slow down the reaction. Based on this finding, we propose that hCES1 substrates with β-aminocarboxylester structure might form orthoester intermediates in hCES1-catalyzed hydrolysis, and therefore prolong their in vivo half-life. Thus, this study helps to clarify the catalytic mechanism of hCES1 and elucidates important details of its catalytic process, and furthermore, provides important insights into the metabolism of hCES1 substrates and drug designing.

References
1.
Masgrau L, Truhlar D . The importance of ensemble averaging in enzyme kinetics. Acc Chem Res. 2014; 48(2):431-8. PMC: 4334256. DOI: 10.1021/ar500319e. View

2.
Sanghani S, Sanghani P, Schiel M, Bosron W . Human carboxylesterases: an update on CES1, CES2 and CES3. Protein Pept Lett. 2009; 16(10):1207-14. DOI: 10.2174/092986609789071324. View

3.
Aranda J, Cerqueira N, Fernandes P, Roca M, Tunon I, Ramos M . The catalytic mechanism of carboxylesterases: a computational study. Biochemistry. 2014; 53(36):5820-9. DOI: 10.1021/bi500934j. View

4.
Mentlein R, HEYMANN E . Hydrolysis of ester- and amide-type drugs by the purified isoenzymes of nonspecific carboxylesterase from rat liver. Biochem Pharmacol. 1984; 33(8):1243-8. DOI: 10.1016/0006-2952(84)90176-x. View

5.
Fleming C, Bencharit S, Edwards C, Hyatt J, Tsurkan L, Bai F . Structural insights into drug processing by human carboxylesterase 1: tamoxifen, mevastatin, and inhibition by benzil. J Mol Biol. 2005; 352(1):165-77. DOI: 10.1016/j.jmb.2005.07.016. View