Human and Rodent Carboxylesterases: Immunorelatedness, Overlapping Substrate Specificity, Differential Sensitivity to Serine Enzyme Inhibitors, and Tumor-Related Expression
- 1 May 2002
- journal article
- research article
- Published by Elsevier in Drug Metabolism and Disposition
- Vol. 30 (5) , 541-547
- https://doi.org/10.1124/dmd.30.5.541
Abstract
Carboxylesterases hydrolyze numerous endogenous and foreign compounds with diverse structures. Humans and rodents express multiple forms of carboxylesterases, which share a high degree of sequence identity (∼70%). Alignment analyses locate in carboxylesterases several functional subsites such the catalytic triad as seen in acetylcholinesterase. The aim of this study was to determine among human and rodent carboxylesterases the immunorelatedness, overlapping substrate specificity, differential sensitivity to serine enzyme inhibitors, tissue distribution, and tumor-related expression. Six antibodies against whole carboxylesterases or synthetic peptides were tested for their reactivity toward 11 human or rodent recombinant carboxylesterases. The antibodies against whole proteins generally exhibited a broader cross-reactivity than the anti-peptide antibodies. All carboxylesterases hydrolyzed para-nitrophenylacetate and para-nitrophenylbutyrate. However, the relative activity varied markedly from enzyme to enzyme (>20-fold), and some carboxylesterases showed a clear substrate preference. Carboxylesterases with the same functional subsites had a similar profile on substrate specificity and sensitivity toward phenylmethylsulfonyl fluoride (PMSF) and paraoxon, suggesting that these subsites play determinant roles in the recognition of substrates and inhibitors. Among three human carboxylesterases, HCE-1 hydrolyzed both substrates to a similar extent, whereas HCE-2 and HCE-3 showed an opposite substrate preference. All three enzymes were inhibited by PMSF and paraoxon, but they showed a marked difference in relative sensitivities. Based on immunoblotting analyses, HCE-1 was present in all tissues examined, whereas HCE-2 and HCE-3 were expressed in a tissue-restricted pattern. Colon carcinomas expressed slightly higher levels of HCE-1 and HCE-2 than the adjacent normal tissues, whereas the opposite was true with HCE-3.This publication has 46 references indexed in Scilit:
- Structural Basis for the Insensitivity of a Serine Enzyme (Palmitoyl-Protein Thioesterase) to Phenylmethylsulfonyl FluorideJournal of Biological Chemistry, 2000
- Human Carboxylesterases in Term Placentae: Enzymatic Characterization, Molecular Cloning and Evidence for the Existence of Multiple FormsPlacenta, 1999
- THE MAMMALIAN CARBOXYLESTERASES: From Molecules to FunctionsAnnual Review of Pharmacology and Toxicology, 1998
- Synthesis and Enzymatic Hydrolysis of Esters, Constituting Simple Models of Soft Drugs.CHEMICAL & PHARMACEUTICAL BULLETIN, 1998
- The Architecture of Human Acetylcholinesterase Active Center Probed by Interactions with Selected Organophosphate InhibitorsPublished by Elsevier ,1996
- Molecular cloning and expression of rat hepatic neutral cholesteryl ester hydrolaseBiochimica et Biophysica Acta (BBA) - Lipids and Lipid Metabolism, 1995
- Cloning and Sequencing of Rat Liver Carboxylesterase ES-3 (EGASYN)Biochemical and Biophysical Research Communications, 1994
- Glycosylation-dependent activity of baculovirus-expressed human liver carboxylesterases: cDNA cloning and characterization of two highly similar enzyme formsBiochemistry, 1993
- Amino acid residues controlling acetylcholinesterase and butyrylcholinesterase specificityBiochemistry, 1993
- Genetic identification of rat liver carboxylesterases isolated in different laboratoriesBiochimica et Biophysica Acta (BBA) - Protein Structure and Molecular Enzymology, 1987