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Purification and properties of an esterase from human breast cyst fluid.

Levels of estradiol 17 beta-ester hydrolytic activity in the breast cyst fluid (BCF) from 25 different women with fibrocystic disease of the breast were found to vary over a wide range (0-2.4 nmol/min/mg protein for estradiol acetate). On the basis of electrophoretic mobility on agarose gels, the activity from different individuals appeared to be identical. The esterase activity from a single BCF sample was purified to near homogeneity by differential ammonium sulfate precipitation, ion-exchange, and hydrophobic interaction chromatography. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis, after the final purification step, showed two bands with molecular weights of approximately 22,000 and 23,000, neither of which was immunoreactive with a rabbit antibody raised to a crude esterase-free BCF preparation. Esterase activity could be demonstrated after extraction and renaturation of the protein eluted from the Mr 22,000 band. Resolution of the gel, however, was not good enough to rule out the presence of esterase activity in the Mr 23,000 protein. High performance liquid chromatography gel exclusion chromatography indicated a molecular weight of 90,000-95,000 for the esterase activity in crude BCF and approximately 225,000 for the purified activity, suggesting the native protein to be a tetramer which aggregated during purification. Although the natural substrate of the BCF esterase is unknown, the enzyme is able to cleave a variety of esters including acetate, valerate, and stearate esters of estradiol and p-nitrophenyl hexanoate. It is completely inhibited by diisopropylflurophosphate and diethylnitrophenyl phosphate and partially inhibited by NaF and ebelactone. The substrate and inhibitor profile of the enzyme indicates that it is a "B"-type carboxylesterase and not a protease. A comparison of the properties of the BCF esterase with those of esterases from the formed elements of the blood or from plasma suggests that the BCF esterase is not of blood origin and is probably derived from the cyst itself. Physiologically inactive lipoidal estrogens have been shown to be present in many human body fluids and tissues and it is possible that these esters serve as storage forms of the active hormone in hormonally sensitive tissues where the free steroid could be regenerated by hydrolysis.

Anti-Bacterial Agents↗

The role of Ca2+ and Mg2+ in the cytotoxic T lymphocyte reaction and in the secretion of N alpha-benzyloxycarbonyl-L-lysine thiobenzyl ester-serine esterase by human T cell clones.

Human T cell clones contain enzymes that can cleave the substrate N-alpha-benzyloxycarbonyl-L-lysine thiobenzyl ester (BLT). All CTL clones tested in this study secreted BLT-serine esterase activity, whereas only one of three tested non-cytolytic T cell clones secreted this enzymatic activity upon Ag-specific activation. BLT-serine esterase secretion could also be induced by the Fc gamma+ target cell Daudi in the presence of mAb specific for the TCR/CD3 complex, CD2, or the T cell activation Ag Tp 103. In addition, anti-CD3 and a mitogenic combination of anti-CD2 mAb, induced secretion of BLT-serine esterase in the absence of target cells, whereas anti-Tp 103 failed to do so. The secreted BLT-serine esterase activity induced by the various ligands was inhibited by the serine esterase inhibitors PMSF and m-ABA, but not by N-alpha-p-tosyl-L-lysine chloromethyl ketone. Significant BLT-serine esterase activity was induced by target cells or soluble anti-CD3 in the absence of extracellular Ca2+ ions, provided that extracellular Mg2+ ions were present. The cytotoxic activities by the human CTL clones were completely blocked under these conditions. All ligands that induced BLT-serine esterase secretion in the absence of extracellular Ca2+, induced a transient rise of intracellular Ca2+. Soluble anti-CD3 mAb did not induce a transient rise in intracellular Ca2+ or secretion of BLT serine esterase in CTL preincubated for 2 h with 5 mM EGTA. These findings indicate that mobilization of intracellular Ca2+ in human CTL clones is required for induction of secretion of BLT-serine esterase.

Antibodies, Monoclonal↗

The 65-kDa phorbol-diester hydrolase in mouse plasma is esterase 1 and is immunologically distinct from the 56-kDa phorbol-diester hydrolase in mouse liver.

Esterase 1, a well-characterized mouse plasma protein of unknown function, has activity against a wide range of ester substrates including beta-alanine nitrophenyl esters and 17 beta-esters of estradiol. In this article, we report that esterase 1 is also responsible for a majority of the phorbol-12-ester hydrolase activity in mouse plasma. Incubation of homogeneous esterase 1 with 4 beta-phorbol 12 beta-myristate 13 alpha-acetate (PMA) at either 4 or 37 degrees C for up to 18 h yielded phorbol 13 alpha-acetate as the only hydrolysis product. Specific polyclonal antibodies to esterase 1 inhibited 95% of PMA hydrolysis by a purified esterase 1 preparation and 65% of PMA hydrolysis by mouse plasma. Perfused mouse liver homogenates contain two distinct phorbol diester hydrolases with apparent molecular masses of 65 kDa and 56 kDa, respectively. The 65-kDa protein appears to be immunologically identical to the plasma enzyme, while the 56-kDa protein, found in liver but not in plasma, is immunologically distinct. Phorbol 12-myristate, phorbol 12,13-dibutyrate, and PMA were found to be competitive inhibitors of the beta-alanine-nitrophenyl esterase activity of esterase 1 with Ki values of approximately 7 microM. Phorbol 13-acetate and phorbol itself were less effective with Ki values of 37 and 140 microM, respectively. Sodium salts of valeric and myristic acids did not inhibit at 10 microM. The above results indicate that efficient substrate binding requires a phorbol 12-ester. Similar results were obtained with estradiol 17 beta-valerate which is a better substrate for esterase 1 than is PMA. Our results strongly suggest that esterase 1 and a recently described phorbol ester hydrolase isolated from mouse serum (Saito, M., and Egawa, K. (1984) J. Biol. Chem. 259, 5821-5826) are the same and are immunologically and kinetically distinct from the 56-kDa phorbol 12-ester hydrolase in mouse liver.

Animals↗

Micro two-dimensional gel electrophoresis of serum and testis esterases from different strains of mice.

Two-dimensional electrophoresis with time-dependent polyacrylamide gradient gel electrophoresis (PAGGE) in the second dimension was applied to the separation of native molecular forms of esterases from serum and testis of four strains of mice (C57BL/6J, Swiss OF1, F1 hybrid derived from these two populations and Tfm). In Phast System, a modified pH 3-9 gradient, a linear 8-25% gel gradient and a migration time corresponding to 300 Vh, were found to provide the best conditions for esterase analysis. About 70 esterase-active fractions could be separated with good reproducibility. The variants were characterized by their pI (3.9-7.35), their relative mobility and the visual estimation of their susceptibility towards neuraminidase and different esterase inhibitors. In the two tissues, the distribution of the esterase variants corresponded to a 50-500 kDa molecular mass range of calibration proteins, but most of the serum and testis-specific isoforms were confined to the 59-72 kDa range. All serum variants contained a terminal N-acetylneuraminic acid residue, whereas only the testicular esterases in common with those in serum appeared sensitive to neuraminidase. Cholinesterases with a low relative mobility and carboxylesterases with a high relative mobility were detected in serum, while carboxylesterases accounted for the greatest part in the testis which also contained cholinesterases and acetylesterases. Minor interspecies differences were found between C57BL/6J and Swiss OF1 esterases. The expression of two variants which differed between these two species seemed intermediate for the hybrid originating from these two populations. Two new spots were detected in the two-dimensional map of esterases from the strain bearing the Tfm mutation.

Animals↗

Esterase isozyme patterns in developing embryos of Brachydanio rerio (zebra danio), Brachydanio abolineatus (pearl danio), and their hybrids.

The ontogeny of esterase isozymes in Brachydanio rerio (zebra danio), Brachydanio albolineatus (pearl danio), and hybrids formed by their reciprocal crosses was investigated using polyacrylamide disc electrophoresis. Seven esterase isozymes were identified in each species from the unfertilized egg stage to nine days posthatch. Electrophoretic analysis of qualitative changes in enzyme pattern indicated that some esterases were present at all stages of development while other esterases abruptly appeared at a specific stage of morphological differentiation. The esterases of both species were classified on the basis differential substrate and inhibitor specificities. In developing hybrids formed by B. rerio eggs inseminated with B. albolineatus sperm, the maternal isozyme pattern persisted until Stage 17 (gastrulation). Embryonic extracts from Stage 17 onward showed a slow-moving, DFP-sensitive carboxylesterase of paternal origin. In developing hybrids formed by B. albolineatus eggs inseminated with B. rerio sperm, a paternal contribution to the esterase pattern was probably present by the end of gastrulation; esterase activity of distinctively paternal origin was present by Stage 22 (retinal pigmentation) The maternal contribution to the total esterase profile appeared to remain high through hatching. Additional evidence for gene activity at gastrulation was obtained in experiments utilizing actinomycin-D and cycloheximide. Results of exposing embryos of B. rerio to 15 mug/ml of actinomycin-D indicated that transcription of the template RNA coding for cholinesterase occurred during gastrulation or some 20-30 hours prior to the appearance of the isozyme at Stage 22. This template RNA was translated sometime during that 10-hour interval immediately preceding Stage 22.

Animals↗

Synergistic effects of bombesin and cholecystokinin on cholesterol esterase biosynthesis and secretion by AR42J cells.

This study used the rat pancreatoma AR42J cells as model to study hormonal regulation of cholesterol esterase biosynthesis. Our previous studies (Y. Huang and D. Y. Hui, 1991, J. Biol. Chem. 266, 6720-6725) have demonstrated that the AR42J cells responded to cholecystokinin (CCK) and secretin challenge by increasing cholesterol esterase biosynthesis. The current investigation showed that another gastric peptide hormone, bombesin, was also effective in stimulation of cholesterol esterase biosynthesis. Cholesterol esterase biosynthesis in AR42J cells increased 2- to 3-fold in the presence of 5 to 10 nM bombesin or 4 nM CCK. More significantly, when both bombesin and CCK were added to the incubation medium at these concentrations simultaneously, a 15-fold induction of cholesterol esterase biosynthesis was observed. Slot-blot analysis of RNA isolated from control and hormone-stimulated cells revealed no change in the level of cholesterol esterase mRNA, suggesting the post-transcriptional activation of cholesterol esterase biosynthesis. The synergism between bombesin and CCK was not restricted to cholesterol esterase biosynthesis as the simultaneous addition of the two hormones also dramatically increased amylase secretion by AR42J. The results of these studies indicated that gastric peptide hormones may act in concert to stimulate maximally digestive enzyme biosynthesis. The synergistic effects of bombesin and CCK also suggest that distinctive signal transduction pathways may be responsible for the bombesin and CCK induction of pancreatic protein secretion.

Amylases↗

Mutational analysis of the Streptomyces scabies esterase signal peptide.

Ten site-directed mutations affecting the predicted 39-amino-acid signal peptide of the Streptomyces scabies esterase were used to examine start-codon usage and esterase secretion in S. lividans. The first of two in-frame AUG codons was preferred for translation initiation. Removal of 2 of the 4 positively charged amino acids at the amino terminus of the signal peptide reduced esterase expression more than 100-fold; however, deletion of all 4 charged residues reduced expression by only 2- to 5-fold. Deletion of 4 or 8 amino acids from the hydrophobic core of the signal peptide reduced esterase production more than 200-fold, and a signal peptide processing site deletion completely disrupted esterase expression. For all constructs in which a mutation in the signal sequence decreased esterase production, esterase mRNA levels were also reduced, suggesting that a defect in secretion or processing affected esterase transcript abundance.

Amino Acid Sequence↗

Purification and characterization of esterases D-1 and D-2 from human erythrocytes.

Esterase D-1 (carboxylesterase; carboxylic-ester hydrolase, EC 3.1.1.1) was purified to homogeneity and esterase D-2 was highly purified from human erythrocytes. A new procedure, which included fractionation with ammonium sulfate, hydrophobic chromatography on a Toyopearl HW-65 column, and chromatographies on CM-cellulose and hydroxylapatite columns, was developed. Esterases D-1 and D-2 were purified about 9000- and 5600-fold over the precipitates with 65% saturated ammonium sulfate in 14 and 35% yields, respectively. The minimum molecular weights of esterases D-1 and D-2 were estimated to be 35,000 based on the mobilities on sodium dodecyl sulfate-polyacrylamide gel electrophoresis with or without 2-mercaptoethanol. The molecular weights of both enzymes were calculated to be 76,000 by gel filtration. These findings indicated that these two enzymes consisted of dimer without an intermolecular disulfide bond(s). Amino acid analysis of esterase D-1 showed that the total residues of aspartic acid plus asparagine, glutamic acid plus glutamine, glycine, and leucine represent about 40% of the total amino acid residues. Esterases D-1 and D-2 have almost identical biochemical characteristics, including Km values, sensitivities to sulfhydryl reagents, and molecular weights. Esterase D-2 cross-reacted with a rabbit antibody raised against the purified esterase D-1.

Amino Acids↗

Intraspecies variation in methacholine-stimulated esterase release from mouse submandibular gland.

Esterase release was investigated in male and female submandibular glands of 5 strains of mice (ICR/BR, ND/4BR, SW/BR, DDS/Cox and C57BL/6BR) using dispersed cells prepared by treatment with collagenase and hyaluronidase. The muscarinic-cholinergic agonist methacholine stimulated esterase release in C57BL/6BR, DDS/Cox and SW/BR females and DDS/Cox males in a dose-dependent manner, but did not stimulate esterase release in ICR/BR and ND/4BR strains of both sexes. The percentage release of esterase over control in response to methacholine in females was of the descending order: C57BL/6BR, DDS/Cox, SW/BR, ND/4BR, ICR/BR. There was a close relationship between the percentage release of esterase by methacholine and the esterase activity in homogenate of submandibular gland. The lower the esterase content in the homogenate of mouse submandibular gland, the higher the percentage release of esterase by methacholine stimulation in the dispersed cells.

Animals↗

Non-specific steroidal esterase activity and distribution in human and other mammalian tissues.

An NADPH dependent arylamine carcinogen and fatty acid steroid ester metabolizing esterase activity belonging to the B- or carboxylesterase class of non-specific esterase (EC 3.1.1.1) was measured by two different methods: (i) a spectrophotometric assay using alpha naphthyl acetate (ANA) as substrate and (ii) a radiometric method using the conversion of beclomethasone-17,21-dipropionate to beclomethasone-17-monopropionate as the endpoint. The two methods were strongly correlated when assayed in human mononuclear leukocytes (r = 0.89, P < 0.0001) and human mammary tissue (r = 0.91, P < 0.0001). Hence it was concluded that the two substrates are metabolized at least in part by the same enzyme. This esterase activity was abundant in human monocytes, present in T-lymphocytes and equally divided between CD4 and CD8 T-lymphocyte subsets. The same activity was expressed in human liver, colon, stomach, breast and brain tissues. The distribution of this esterase in human tissues showed high activity in liver, intermediate activity in colon, stomach and breast and low activity in brain tissue. The interorgan distribution observed in human tissues was closely mimicked when the esterase activity was assessed in liver, colon and brain tissues from three mouse strains and three rat strains. The non-specific steroidal esterase activity determined by ANA metabolism in human mammary tissue was shown to be reproducible when assayed as triplicate samples from each of 16 different women (intraclass correlation coefficient 67.3%, P < 0.03). The interindividual variation in mammary tissue was high (18.4-fold) and there was a positive correlation between the esterase activity and age (r = 0.58, P < 0.01), as well as a tendency toward bimodal distribution. To our knowledge, these data represent the first systematic study of interorgan and interspecies comparisons of a non-specific steroidal esterase activity.

Adult↗

Esterases in inbred strains of mice with differential cholesterolemic responses to a high-cholesterol diet.

Specific esterase isoenzyme patterns in plasma may be associated with responsiveness of serum cholesterol to dietary cholesterol. In rabbits and rats the presence and absence of a high-mobility, anodal esterase band on electrophoresis have been shown to be associated with hypo- and hyperresponsiveness, respectively. We fed for 28 days male mice of 7 inbred strains either a low-cholesterol, commercial diet or a diet containing 2% (w/w) cholesterol, 0.5% cholic acid and 5% olive oil. Feeding the high-cholesterol diet revealed marked inter-strain differences in the responses of plasma and liver cholesterol; the increases ranged from 21 to 129% and from 10 to 80-fold, respectively. There was no association between esterase isoenzyme patterns in plasma and the sensitivity to the high-cholesterol diet. The mean baseline plasma total esterase activity tended to be positively associated with the absolute response of plasma cholesterol to the high-cholesterol diet (r = 0.56; n = 7), but the positive relationship between the baseline concentration of the ES-1 component in plasma and the cholesterolemic response was stronger (r = 0.84; n = 7; P less than 0.05). The high-cholesterol diet caused a significant increase in plasma total esterase activities in 6 out of the 7 strains. Evidence is presented that the increase in plasma total esterase activity, which was associated with an increase in the activity and concentration of the so-called ES-2 isoenzyme, is the result of an enhanced release of esterases from the intestine, rather than from the liver. A significant, positive correlation was found between the baseline intestinal esterase activity and the cholesterolemic response after cholesterol feeding (r = 0.83; n = 7; P less than 0.05).

Alanine Transaminase↗

Peripheral nerve esterases and the promotion of organophosphate-induced neuropathy in hens.

Several esterase inhibitors, not capable of causing peripheral neuropathy by themselves, exacerbate organophosphate-induced delayed polyneuropathy (OPIDP) and other axonopathies. This effect was called promotion of axonopathies and it was found not to be associated with inhibition of neuropathy target esterase (NTE), the molecular target of OPIDP. The search for an esterase as the target of promotion has started long ago, when an eterogeneous group of esterases-hydrolysing phenyl valerate (PV) was identified in hen's sciatic nerve by means of selective inhibitors. Correlation studies in vivo indicated that the target of promotion may have been among the proteins present in the soluble fraction. When this soluble PV-esterase activity was separated on a Sephacryl-S-300 column, correlation was found between promotion and its inhibition in vivo. The electrophoretic analysis of this fraction indicated the presence of several proteins. Subsequent ion-exchange chromatography identified a protein of about 80 kDa molecular weight that was associated with PV-esterase activity. The inhibition of this activity did also correlate with promotion. The sequence of this protein identified it as ovotransferrin, but commercial preparations of ovotransferrin were found to lack PV-esterase activity. Binding experiments on this purified PV-activity and on commercial ovotransferrin using radiolabelled promoters were inconclusive. Titration of this PV-activity showed that about 20-30% of it is resistant to high concentrations of several inhibitors, suggesting heterogeneity of the fraction. In fact, bi-dimensional electrophoresis indicated the presence of several proteins. Finally, in vivo correlation experiments with p-toluensulfonyl fluoride showed that whereas this chemical does not promote OPIDP induced by dibutyl dichlorovinyl phosphate, it does inhibit about 80% of this PV-activity. In conclusion, available data indicate that the target of promotion is unlikely to be ovotransferrin. However, all promoters identified so far are esterase inhibitors suggesting that the target of promotion might be, indeed, a protein with esteratic activity.

Animals↗

Genome-wide cloning and characterization of microbial esterases.

We have isolated putative esterase genes from various bacterial chromosomes. Thirty open reading frames predicted to encode esterases were randomly selected from 13 sequenced bacterial chromosomes and were cloned into an expression vector. The esterase activity of the resulting clones was tested on a tributyrin plate at different pH values and temperatures. Nine out of thirty tested clones exhibited significant tributyrin hydrolyzing activity. The enzyme S5 from the gene b0494 of Escherichia coli, the enzyme S12 from the gene STM0506 of Salmonella typhimurium, and the enzyme S28 from the gene AF1716 of Archaeoglobus fulgidus exhibited high activity at an alkaline pH range. The esterase S11 encoded by the gene PA3859 of Pseudomonas aeruginosa PAO1 and the esterase S21 from the gene SMc01033 of Sinorhizobium meliloti 1021, both showed a sharp increase in enzyme activity above pH 8.0. Furthermore, the enzymes S5, S12, S21, and S28 retained the esterase activity when they were incubated at 50 degrees C, suggesting that these enzymes are thermostable. Subsequent pH vs. activity and temperature vs. activity experiments with selected enzymes in a solution assay system confirmed the validity of the above data. The genome-wide exploration strategy of proteins provided valuable information on the esterases by revealing subtle biochemical differences between the esterases of different sources.

Amino Acid Sequence↗

A novel esterase from Ralstonia sp. M1: gene cloning, sequencing, high-level expression and characterization.

A newly isolated gene from Ralstonia sp. M1, encoding an esterase, was cloned in Escherichia coli and its nucleotide sequence determined. The 1.6kb insert revealed one complete open reading frame, predicted to encode an esterase (320 aa, 34.1kDa) with a pI of 9.86. EstR contained a putative oxyanion hole H36G37, a conserved pentapeptide G103HSLG107 and a conserved catalytic His265 and Asp237. The EstR sequence shared 64-70 and 44-48% identity with the hydrolases/acyltransferases from Burkholderia strains and from Ralstonia strains, respectively, 44 and 38% identity with the lactone-specific esterase from Pseudomonas fluorescens and Mesorhizobium loti, respectively. The esterase EstR was expressed with a high level of 41mg/g wet cells. The Ni-NTA-purified esterase EstR showed an optimal activity in the temperature range 60-65 degrees C and pH range 7.5-9.0 towards p-nitrophenyl caproate. The enzyme was found to be highly resistant to many organic solvents especially induced by ethanolamine. Metal ions showed slight effect on esterase activity. The inhibitor phenylmethanesulfonyl fluoride inhibited strongly the esterase. Triton X-45 induced the activation of EstR, but other detergents slightly to strongly decreased or completely inhibited. Among tested p-NP esters, caproate was the most preferential substrate of this esterase.

Amino Acid Sequence↗

Alterations in uterine and serum esterases in pregnant mammals.

Uterine flushings, endometrial extracts, and serum from estrous and pregnant rabbits were analyzed by acrylamide gel electrophoresis for esterase activity. Two bands of enzyme activity in uterine findings were detectable on days 4 through 7 after coitus. No activity was detectable in washings from nonpregnant animals or on days 1 to 3 of pregnancy. Esterase activity was detectable in endometrial extracts of all rabbits. The intensity and complexity of the esterase activity markedly increased on day 3 and persisted through day 7 after coitus, during which time nine to ten electrophoretic bands were apparent, compared with four bands in extracts from estrous animals. Serum from pregnant rabbits showed two basic patterns. High esterase activity, concentrated in four major bands, was seen in some sera, while other serum samples showed little esterase activity. No consistent correlation was apparent, however, between the stage of gestation and the serum esterase pattern. In contrast, analysis of mouse serum prior to and after mating showed consistent, reproducible changes in esterase profiles, noticeable about 7 days after coitus and becoming increasingly pronounced until parturition. Changes in mouse serum included both marked enhancement of some esterase activities and concomitant diminution in others with increasing gestation time.

Animals↗

Enantiomeric inhibitors of cholesterol esterase and acetylcholinesterase.

Enantiomers of N-methyl-N,alpha-methylbenzylbutyramide (1), 1-butyl-3-methyl-3'-alpha-methylbenzylurea (2), 1,2,3, 4-tetrahydro-1-naphthyl-N-butylcarbamate (3), 1,1'-bi-2-naphthyl-2, 2'-di-N-butylcarbamate (4), 1, 1'-bi-2-naphthyl-2-ol-2'-N-butylcarbamate (5), and 1, 1'-bi-2-naphthyl-2-butyrate-2'-N-butylcarbamate (6) are inhibitors of porcine pancreatic cholesterol esterase-catalyzed hydrolysis of 4-nitrophenyl butyrate and of electric eel acetylcholinesterase-catalyzed hydrolysis of acetylthiocholine in the presence of 5,5'-dithiobis-2-nitrobenzoate. For competitive inhibitors, values of the inhibition constant (Ki) and the enantiomeric ratio (Ecomp.) are investigated. For active site-directed irreversible inhibitors, values of the inhibition constant (Ki), the carbamylation constant (k2), the bimolecular rate constant (ki), and the enantiomeric ratio (E) are investigated. Toward both enzymes, compounds 1 are poor competitive inhibitors (Ki=102-104 microM) but have good enantioselectivities (Ecomp.=10-50, the preference for R). R-2 and S-2 are competitive inhibitors of acetylcholinesterase with Ki=26 and 80 microM, respectively (the preference for R) but are active site-directed irreversible inhibitors of cholesterol esterase with ki=4 and 16 M-1 sec-1, respectively (the preference for S). For those competitive inhibitions, both leaving group hydrophilic and hydrophobic binding sites of cholesterol esterase or both anionic substrate binding site and peripheral anionic binding site of acetylcholinesterase bind to N,N-methyl-alpha-methylbenzyl disubstituted amide parts of these inhibitors and the enzyme does not catalyze the hydrolysis of these inhibitors. The opposite stereopreference (S) for the inhibition of cholesterol esterase by compounds 2 may be due to the fact that N, N-methyl-alpha-methylbenzyl disubstituted amide parts of these inhibitors bind to the alkyl chain binding site of the enzyme. Compounds 3-6 are active site-directed irreversible inhibitors of cholesterol esterase (ki=1-13000 M-1 s-1) and peripheral anionic binding site-directed irreversible inhibitors of acetylcholinesterase (ki=1.7-1300 M-1 s-1). Compounds 3 have low enantioselectivities (E=1.3-1.4) for both enzymes. The stereopreference for atropisomers 4 and 6 is S-form toward both enzymes (E=2-30) and is identical to that of cholesterol esterase-catalyzed hydrolysis of 1,1'-bi-2-naphthyl-2,2'-diacylate. This stereopreference (S) may be due to the fact that the butyryl group or one of two butylcarbamate groups of S-atropisomers binds more effectively to the leaving group hydrophobic binding site of cholesterol esterase or the peripheral anionic binding site of acetylcholinesterase than that of R-atropisomers. The opposite stereopreference (R) for atropisomers 5 toward both enzymes may be due to a favorable interaction between the hydroxyl group of the inhibitors and the leaving group hydrophilic binding site of cholesterol esterase or the peripheral anionic binding site of acetylcholinesterase.

Acetylcholinesterase↗

Structure-reactivity relationships for the inhibition mechanism at the second alkyl-chain-binding site of cholesterol esterase and lipase.

Alkyl-N-phenyl carbamates (2-8) (see Figure 1), alkyl-N-phenyl thiocarbamates (9-15), 2,2'-biphenyl-2-ol-2'-N-substituted carbamates (16-23), and 2, 2'-biphenyl-2-N-octadecylcarbamate-2'-N-substituted carbamates (24-31) are prepared and evaluated for their inhibition effects on porcine pancreatic cholesterol esterase and Pseudomona species lipase. All inhibitors are characterized as transient or pseudo substrate inhibitors for both enzymes. Both enzymes are not protected from inhibition and further inactivated by carbamates 2-8 and thiocarbamates 9-15 in the presence of trifluoroacetophenone. Therefore, carbamates 2-8 and thiocarbamates 9-15 are exceptions for active site binding inhibitors and are probably the second alkyl-chain binding-site-directed inhibitors for both enzymes. The inhibition data for carbamates 2-8 and thiocarbamates 9-15 are correlated with the steric constant, E(s), and the hydrophobicity constant, pi; however, the inhibition data are not correlated with the Taft substituent constant, sigma. A comparison of the inhibition data for carbamates 2-8 and thiocarbamates 9-15 toward both enzymes indicates that thiocarbamates 9-15 are more potent inhibitors than carbamates 2-8. A comparison of the inhibition data for cholesterol esterase and Pseudomona species lipase by carbamates 2-8 or thiocarbamates 9-15 indicates that cholesterol esterase is more sensitive to the E(s) and pi values than Pseudomona species lipase. The negative slope values for the logarithms of inhibition data for Pseudomona species lipase by carbamates 2-8 and thiocarbamates 9-15 versus E(s) and pi indicate that the second alkyl-chain-binding site of Pseudomona species lipase is huge, hydrophilic, compared to that of cholesterol esterase, and prefers to interact with a bulky, hydrophilic inhibitor rather than a small, hydrophobic one. On the contrary, the second alkyl-chain-binding site of cholesterol esterase prefers to bind to a small, hydrophobic inhibitor. Both enzymes are protected from inhibition by carbamates 16-23 in the presence of trifluoroacetophenone. Therefore, carbamates 16-23 are characterized as the alkyl chain binding site, esteratic site oxyanion active site directed pseudo substrate inhibitors for both enzymes. Both enzyme inhibition data for carbamates 16-22 are well-correlated with sigma alone. The negative rho values for these correlations indicate that the serine residue of both enzymes and carbamates 16-22 forms the tetrahedral species with more positive charges than inhibitors and the enzymes and follow the formation of the carbamyl enzymes with more positive charges than the tetrahedral species. Carbamates 24-31 are also exceptions for active site binding inhibitors and probably the second alkyl chain binding site-directed inhibitors for both enzymes. However, the enzyme inhibition constants for carbamates 24-31 are correlated with values of sigma, E(s), and pi. The negative rho values for these correlations indicate that both enzymes and carbamates 24-31 form the tetrahedral species with more positive charges than inhibitors and the enzymes and follow the formation of the carbamyl enzymes with more positive charges than those tetrahedral species. Therefore, carbamates 24-31 may bind to both the active sites and the second alkyl chain binding site and follow the evacuation of the active sites. A comparison of the rho values for cholesterol esterase and Pseudomona species lipase by carbamates 24-31 indicates that cholesterol esterase is much more sensitive to the sigma values than Pseudomona species lipase. The negative sensitivity values, delta, for the cholesterol esterase inhibitions by carbamates 24-31 indicate that the enzyme prefers to bind to a bulky carbamyl group rather than bind to a small one. The hydrophobicity of carbamates 24-31 does not play a major role in both enzyme inhibitions.

Animals↗

Biochemistry of esterases associated with organophosphate resistance in Lucilia cuprina with comparisons to putative orthologues in other Diptera.

Esterase activities associated with organophosphate insecticide resistance in the Australian sheep blowfly, Lucilia cuprina, are compared with similar activities in other Diptera. The enzymes making the major contribution to methyl butyrate hydrolysis ("ali-esterase") in L. cuprina, M. domestica, and D. melanogaster comigrate during electrophoresis. The enzymes in L. cuprina and D. melanogaster correspond to the naphthyl acetate hydrolyzing E3 and EST23 isozymes of those species. These and previously published data suggest that the ali-esterases of all three species are orthologous. Strains of L. cuprina fall into four groups on the basis of quantitative determinations of their ali-estesterase, OP hydrolase, and malathion carboxylesterase activities and these groups correspond to their status with respect to two types of OP resistance. Strains susceptible to OP's have high ali-esterase, low OP hydrolase, and intermediate MCE activities; those resistant to malathion but not diazinon have low ali-esterase, intermediate OP hydrolase, and high MCE activities; those resistant to diazinon but not malathion have low ali-esterase, high OP hydrolase, and low MCE activities; those resistant to both OPs have low ali-esterase, high OP hydrolase, and high MCE activities. The correlated changes among the three biochemical and two resistance phenotypes suggest that they are all properties of one gene/enzyme system; three major allelic variants of that system explain OP susceptibility and the two types of OP resistance. Models are proposed to explain the joint contribution of OP hydrolase and MCE activities to malathion resistance and the invariant association of low ali-esterase and elevated OP hydrolase activities in either type of resistance.

Animals↗