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Egasyn, a protein which determines the subcellular distribution of beta-glucuronidase, has esterase activity.

The glycoprotein egasyn complexes with and stabilizes precursor beta-glucuronidase in microsomes of several mouse organs. Several observations indicate egasyn is, in addition, an esterase. Liver homogenates of egasyn-positive strains have specific electrophoretically separable esterases which are absent in egasyn-negative mice. These esterases react with anti-egasyn serum. A specific esterase was likewise complexed with immunopurified microsomal beta-glucuronidase. The esterases were, like egasyn and microsomal beta-glucuronidase, concentrated in the microsomal subcellular fraction. Egasyn which is not bound to beta-glucuronidase, which represents 80-90% of total liver egasyn, is not complexed with other liver proteins. Egasyn, therefore, specifically stabilizes beta-glucuronidase in microsomes. The esterase activity is inhibited by bis-p-nitrophenyl phosphate indicating it is a carboxyl esterase. Several possible functions of egasyn-esterase activity are discussed.

Animals↗

Intestinal cholesterol esterase: intracellular enzyme or contamination of cytosol by pancreatic enzymes?

The location of cholesterol esterase in rabbit intestine was re-evaluated. In three different experiments that were designed to eliminate contaminating mucus and pancreatic enzymes from the lumen of the small intestine, it was observed that the activities of cholesterol esterase and amylase in intestinal cytosol and whole homogenate decreased in parallel fashion. After the mucus was carefully wiped from the intestinal mucosa prior to the preparation of cytosol, amylase and cholesterol esterase activities decreased sevenfold. The recovery of the total activity of both enzymes in the cytosol was approximately 15%. When the lumen of the small intestine was filled with phosphate buffer and incubated at 37 degrees C for 20 min, cholesterol esterase and amylase activities in the cytosol prepared from this segment were further decreased. Moreover, the activities of amylase and cholesterol esterase were completely recovered from the lumen. Amylase and cholesterol esterase activities in the cytosol were eliminated if dithiothreitol was used as a mucolytic agent to prepare intestinal mucosa for the isolation of intestinal cells. In whole homogenates prepared from these intestinal segments, approximately 10-15% of the total cholesterol esterase activity remained. This activity, which could not be accounted for by pancreatic contamination, was associated with intestinal nuclei and cellular debris. Progesterone, ethinyl estradiol, and 25-hydroxycholesterol regulated microsomal acyl CoA:cholesterol acyltransferase activity and caused similar directional changes in the rate of cholesteryl ester synthesis in isolated intestinal cells. These same sterols, however, failed to affect cytosolic cholesterol esterase activity in vitro.

Amylases↗

Membrane-bound and soluble esterase activities in various hen brain regions after diisopropyl phosphorofluoridate and trichlorfon treatment.

Acetylcholinesterase, neurotoxic esterase, and nonspecific esterase activities were studied in subcellular fractions obtained from homogenates of forebrain, cerebellum, and brainstem areas of hen brain. The hens were given a single, oral dose (1.0 mg/kg of Dyflos (diisopropyl phosphorofluoridate) or 100 mg/kg of trichlorfon (dimethyl -2,2,2-trichloro-1-hydroxyethylphosphonate). The animals were killed 24 hr after dosing. The level of neurotoxic esterase and soluble nonspecific esterase activities were consistent from region to region; however, acetylcholinesterase activity among the brain regions varied significantly. Both organophosphorus compounds produced definite inhibition of acetylcholinesterase. The cerebellar acetylcholinesterase activity was the most susceptible to organophosphorus ester-induced inhibition. A marked inhibition of neurotoxic esterase (70-80%) was produced by diisopropyl phosphorofluoridate in all areas. Trichlorfon produced little or no inhibition of neurotoxic esterase (0-10%). Little variation in soluble nonspecific esterase activity (alpha -naphthyl acetate) was noted between the three brain regions studied. Both diisopropyl phosphorofluoridate and trichlorfon failed to significantly alter soluble nonspecific esterase activity among the brain regions.

Acetylcholinesterase↗

Aspartic acid 320 is required for optimal activity of rat pancreatic cholesterol esterase.

The acidic amino acid residue required for the catalytic activity of rat pancreatic cholesterol esterase has been identified in this study by sequence comparison with other serine esterases and by site-directed mutagenesis experiments. The sequence comparison studies identified 3 acidic residues in homologous domains between cholesterol esterase, acetylcholinesterase, cholinesterase, and Geotrichum candida lipase that may potentially be the catalytic acidic residue in these proteins. The role of Glu78, Asp79, and Asp320 in the catalytic activity of rat cholesterol esterase was then addressed by mutagenesis and expression of the cDNA. Results showed that replacement of Glu78 or Asp79 with alanine has no effect on the ability of the cholesterol esterase to hydrolyze the artificial water-soluble substrate p-nitrophenyl butyrate. In contrast, the Asp320-->Ala320 substitution abolished the enzyme activity of the cholesterol esterase. The specific requirement of Asp320 for optimal enzyme activity was demonstrated by substitution of the aspartic acid with glutamic acid, thus retaining the charge unit at this position. The Asp320-->Glu320 substitution resulted in an enzyme that displayed normal interaction with bile salt. However, catalytic activity of this mutagenized protein was reduced by approximately 50%. These results strongly suggested that aspartic acid 320 is an important component of the catalytic triad of pancreatic cholesterol esterase. The specific requirement of aspartic acid, instead of glutamic acid, for optimal activity is different from that of other members of the serine esterase gene family.

Acetylcholinesterase↗

Three-dimensional structure of the catalytic core of acetylxylan esterase from Trichoderma reesei: insights into the deacetylation mechanism.

Acetylxylan esterase from Trichoderma reesei removes acetyl side groups from xylan. The crystal structure of the catalytic core of the enzyme was solved at 1.9 A resolution. The core has an alpha/beta/alpha sandwich fold, similar to that of homologous acetylxylan esterase from Penicillium purpurogenum and cutinase from Fusarium solani. All three enzymes belong to family 5 of the carbohydrate esterases and the superfamily of the alpha/beta hydrolase fold. Evidently, the enzymes have diverged from a common ancestor and they share the same catalytic mechanism. The catalytic machinery of acetylxylan esterase from T. reesei was studied by comparison with cutinase, the catalytic site of which is well known. Acetylxylan esterase is a pure serine esterase having a catalytic triad (Ser90, His187, and Asp175) and an oxyanion hole (Thr13 N, and Thr13 O gamma). Although the catalytic triad of acetylxylan esterase has been reported previously, there has been no mention of the oxyanion hole. A model for the binding of substrates is presented on the basis of the docking of xylose. Acetylxylan esterase from T. reesei is able to deacetylate both mono- and double-acetylated residues, but it is not able to remove acetyl groups located close to large side groups such as 4-O-methylglucuronic acid. If the xylopyranoside residue is double-acetylated, both acetyl groups are removed by the catalytic triad: first one acetyl group is removed and then the residue is reorientated so that the nucleophilic oxygen of serine can attack the second acetyl group.

Acetylation↗

The non-specific esterases of mouse lung.

The non-specific esterases of the lung of the house mouse, M. musculus, were examined by polyacrylamide electrophoresis and by isoelectric focusing. At least 13 different esterases were distinguished and identified, mainly by their catalytic properties, susceptibility to inhibition, developmental patterns and phenotypic variation amongst different strains. A list of diagnostic features of the 13 esterases was presented. None of the esterases was lung-specific. However, the pattern of esterases found in the adult lung was characteristic of that organ. It was pointed out that this pattern is associated with the high degree of tissue differentiation in the adult lung. At least 8 esterases were found which belong to the isozyme system of carboxylesterase EC 3.1.1.1, under the control of genes located on chromosome 8. These esterases accounted for about 90% of the esterase activity in the lung.

Aging↗

Specificity of the sex-influenced esterase (ES-SI) isozyme in rat liver.

A carboxylesterase which shares common antigenicity with sex-influenced esterase (ES-SI) was found in both the male and the female liver of the rat but not in the following tissues: erythrocyte, heart, kidney, lung, spleen, small intestine, testis, thymus, and lymph node. Subcellular fractionation showed the esterase localizes in the microsome-rich fraction. The strain distribution of the presence or absence of the esterase in inbred rats was identical to that of ES-SI, although in adult males a considerable amount of the esterase exists, unlike ES-SI. The esterase had a higher isoelectric point than ES-SI but after neuraminidase treatment the difference disappeared, suggesting that the esterase has a sialic acid moiety. Because this esterase has different properties from those previously reported, it is proposed that it is designated liver-ES-SI. The common antigenicity and similar strain distribution between ES-SI and liver-ES-SI suggest that liver-ES-SI is a precursor molecule of ES-SI and therefore the two esterases are products of a single gene.

Animals↗

Effects of C1-esterase inhibitor in three models of acute pancreatitis.

The present studies were done to evaluate the therapeutic potential of C1-esterase inhibitor in three different models of acute pancreatitis: (1) Edematous pancreatitis with acinar cell necrosis was induced by 7-h ip injections of 50 micrograms/kg cerulein in mice; (2) Hemorrhagic pancreatitis was induced by feeding a choline-deficient, ethionine-supplemented (CDE) diet in mice; and (3) Hemorrhagic pancreatitis was induced by retrograde infusion of 0.6 mL 5% sodium-taurocholate into the pancreatic duct in rats. C1-esterase inhibitor was given at 100 mg/kg iv before the onset of pancreatitis and at certain intervals thereafter. The severity of pancreatitis was assessed at various times after its onset by determination of serum amylase, by grading of histological alterations, and by determination of survival (survival determined only in models of hemorrhagic pancreatitis). In some of the models, C1-esterase inhibitor slightly ameliorated the degree of histological alterations; the increase in serum amylase was reduced by C1-esterase inhibitor only in CDE diet-induced pancreatitis. In all three models, C1-esterase inhibitor, however, failed to cause major beneficial effects and also failed to improve survival in taurocholate- and diet-induced pancreatitis. Additional studies in 12 patients with acute pancreatitis showed that C1-esterase inhibitor activity was markedly increased in serum of all patients during the first 9 d of the disease, suggesting that C1-esterase inhibitor behaves like an acute phase protein. Taken together the results from the animal and the human studies, C1-esterase inhibitor appears to only have a limited potential for treatment of acute pancreatitis.

Acute Disease↗

Synthesis and bioassay of isoprenoid 3-alkylthio-1,1,1-trifluoro-2-propanones: potent, selective inhibitors of juvenile hormone esterase.

Four 3-alkylthio-1,1,1-trifluoro-2-propanones with juvenile hormone-like side chains were prepared from citronellol and homogeraniol. These substrates were designed as possible transition-state analogs for the juvenile hormone (JH)-specific esterases present in insects. These four isoprenoid trifluormethyl ketones were assayed in vitro with JH esterase and general esterases from larvae of the cabbage looper, Trichoplusia ni (Lepidoptera, Noctuidae), and with eel acetylcholinesterase and bovine chymotrypsin. JH esterase inhibition I50 values were in the nanomolar range for all four compounds, while the other esterases had I50's which were 10(3) to 10(5) higher. The high selectivity of these inhibitors is believed to be due to their similarity in size and functionality to natural JH III. Treatment of T. ni larvae in vivo with solutions of the most active analog, 3-[(E)-4,8-dimethyl-3,7-nonadienylthio]-1,1,1-trifluoro-2-propanon e (DNTFP) causes a dose-dependent delay in pupation and a concurrent selective inhibition of JH esterase. These data support the hypothesis that the reduction in in vivo JH titer in larval T. ni is due, in part, to hydrolysis of the hormone by selective esterases. DNTFP appears to be competing with JH for the active site of JH esterase.

Acetone↗

Methacholine-stimulated release of benzoyl-arginine-ethylester esterase from mouse submandibular gland cells.

The possible existence of cholinoceptor for inducing benzoyl-arginine-ethylester (BAEe) esterase release in the mouse submandibular gland was investigated using dispersed-cell preparations from normal male and female, castrated male and testosterone-treated female mice. Methacholine (a cholinoceptive agonist) induced esterase release only in normal female and castrated male mice, both of which had low esterase activity in the submandibular glands, whereas norepinephrine (an alpha-adrenoceptor agonist) induced esterase release in all of the mice. Methacholine-induced esterase release was completely inhibited by atropine, a cholinoceptive antagonist, but not by phenoxybenzamine, an alpha-adrenoceptor antagonist. The effects of metacholine and norepinephrine on esterase release were additive. The results suggest the coexistence of cholinoceptor and alpha-adrenoceptors for esterase release in the mouse submandibular gland. Calcium was essential for esterase release induced by either methacholine or norepinephrine.

Animals↗

Isolation and partial characterization of rat urinary esterase A2.

An enzyme, esterase A2, which hydrolyzes tosyl-arginine methyl ester was isolated from the urine of female, inbred, Dahl-salt-resistant rats using DEAE-Sephadex ion-exchange, aprotinin-agarose affinity and molecular sieve column chromatography. The purest preparation obtained showed four closely migrating bands on polyacrylamide gel electrophoresis. All four bands of the esterase A2 preparation had enzyme activity since all were stainable on zymograms using N-acetyl-L-methionine alpha-naphthyl ester as substrate. Three of these four bands showed decreased electrophoretic mobility following treatment with neuraminidase, indicating that variable sialic acid content accounts for part of the microheterogeneity. The preparation of esterase A2 used was free of rat urinary kallikrein as shown by radioimmunoassay, electrophoretic and isoelectric focusing experiments. The relative kinin-generating ability of rat urinary kallikrein and esterase A2 was highly dependent on the assay used. Using canine plasma as a source of kininogen and the rat uterus to bioassay kinins, esterase A2 was 47% as active as kallikrein; using pure bovine low-molecular-weight kininogen and a radioimmunoassay to measure generated kinins, esterase A2 was only 6% as active as kallikrein. Esterase activity of A2 was activated non-specifically by proteins and detergents. Esterase A2 was 50% inhibited by an 8-fold molar excess of aprotinin and by a 26.5-fold molar excess of soybean trypsin inhibitor, but ovomucoid inhibitor was not inhibitory.

Animals↗

Purification and characterization of rat urinary esterase A1.

An enzyme, esterase A1, which hydrolyzes tosyl-arginine methyl ester (Tos-Arg-OMe) was separated from esterase A2 and kallikrein of male rat urine and purified by a procedure involving ammonium sulfate fractionation, ion exchange chromatography, hydrophobic chromatography and gel filtration. The resulting preparation was apparently homogeneous, as assessed by polyacrylamide gel electrophoresis. The molecular weight of the preparation was estimated to be 27,000 by SDS-polyacrylamide gel electrophoresis and 30,000 by gel filtration. The enzyme was more specific for arginine methyl esters than for lysine methyl esters. The optimum pH determined with Tos-Arg-OMe as a substrate was 8.0 and the Km was 11.8 mM. The Tos-Arg-OMe esterolytic activity of esterase A1 was inhibited by soybean trypsin inhibitor, but not by aprotinin. In immunodiffusion analysis, the antiserum to esterase A1 formed immunoprecipitin arcs with this enzyme and the urine collected from rat bladder, but not with esterase A2, kallikrein, plasma and the urine collected from ureters. These results indicate that rat urinary esterase A1 differs from esterase A2 and kallikrein. The esterase A1 appears to be produced by accessory sex glands and excreted via the spermiduct into the urine.

Animals↗

Biochemical and immunological properties of different electrophoretic forms of juvenile hormone esterase from Trichoplusia ni (Hübner).

The two major electrophoretic forms (pI 5.5, 5.3) of juvenile hormone esterase were independently isolated from hemolymph of larval Trichoplusia ni. A simple and rapid preparation procedure of poly(ethylene glycol) precipitation, Sephadex gel filtration and chromatofocusing is described. Analytical isoelectric focusing showed only one peak of juvenile hormone esterase activity in the respective purified samples, whereas there were four (two major) such peaks in the hemolymph. The amino acid composition of the two forms was similar. The comparison of peptides obtained after protein fragmentation by cyanogen bromide showed that juvenile hormone esterases A and B were very similar, although definitely not identical, in amino acid sequence. The immunological comparisons of juvenile hormone esterases suggested that the number of polyclonal antibody binding sites on both forms was the same. There were no detected differences between immunoreactive properties of juvenile hormone esterase from the hemolymph of different stages of larval maturation. The influence of the active site of the enzyme on its antigenic properties was studied by immunocompetition. The inactive, heat-denatured juvenile hormone esterase can only partially protect against inhibition of its activity by the antibodies, whereas an organophosphate inhibitor which covalently binds to the catalytic center of the enzyme did not change the immunoreactive properties in comparison to active juvenile hormone esterase from hemolymph. These data show that heat-denatured juvenile hormone esterase has lost at least one or more epitopes, but the catalytic site of the enzyme is distinct from the epitopes.

Amino Acids↗

Carnosine protects against the inactivation of esterase induced by glycation and a steroid.

Carnosine, an endogenous histidine-containing dipeptide, protects protein from oxidation and glycation, which may contribute to a potential treatment for some conformational diseases including cataract. Glycation, the non-enzymic reaction of sugars with proteins, promotes cross-linking and further aggregation. Prolonged use of glucocorticoids is a risk factor for cataract, as is diabetes. Esterase activity in the lens is decreased in senile cataract and diabetes. Previously, we reported that glycation and a steroid inactivate esterase. Here we tested the inactivation of esterase with fructose, fructose 6-phosphate (F6P) and ribose as model glycation reactions and prednisolone-21-hemisuccinate (P-21-H) as a model steroid and investigated the ability of carnosine to protect esterase against inactivation. The activity of esterase was measured by a spectrophotometric assay using p-nitrophenyl acetate as the substrate. The modified esterase was examined electrophoretically. The esterase was progressively inactivated by F6P, fructose, ribose and P-21-H. P-21-H was more effective than the sugars. Carnosine significantly inhibited the inactivation of esterase induced by all four compounds. Carnosine decreased the extent of the cross-linking. These results provide further evidence for carnosine's role as an anti-glycation compound. It is also proposed that carnosine may be an anti-steroid agent.

Animals↗

Substrate and positional specificity of feruloyl esterases for monoferuloylated and monoacetylated 4-nitrophenyl glycosides.

4-Nitrophenyl glycosides of 2-, 3-, and 5-O-(E)-feruloyl- and 2- and 5-O-acetyl-alpha-L-arabinofuranosides and of 2-, 3-, and 4-O-(E)-feruloyl- and 2-, 3- and 4-O-acetyl-beta-D-xylopyranosides, compounds mimicking natural substrates, were used to investigate substrate and positional specificity of type-A, -B, and -C feruloyl esterases. All the feruloyl esterases behave as true feruloyl esterases showing negligible activity on sugar acetates. Type-A enzymes, represented by AnFaeA from Aspergillus niger and FoFaeII from Fusarium oxysporum, are specialized for deferuloylation of primary hydroxyl groups, with a very strong preference for hydrolyzing 5-O-feruloyl-alpha-L-arabinofuranoside. On the contrary, type-B and -C feruloyl esterases, represented by FoFaeI from F. oxysporum and TsFaeC from Talaromyces stipitatus, acted on almost all ferulates with exception of 4- and 3-O-feruloyl-beta-D-xylopyranoside. 5-O-Feruloyl-alpha-L-arabinofuranoside was the best substrate for both TsFaeC and FoFaeI, although catalytic efficiency of the latter enzyme toward 2-O-feruloyl-alpha-L-arabinofuranoside was comparable. In comparison with acetates, the corresponding ferulates served as poor substrates for the carbohydrate esterase family 1 feruloyl esterase from Aspergillus oryzae. The enzyme hydrolyzed all alpha-L-arabinofuranoside and beta-D-xylopyranoside acetates. It behaved as a non-specific acetyl esterase rather than a feruloyl esterase, with a preference for 2-O-acetyl-beta-D-xylopyranoside.

Acetylation↗

The search of the target of promotion: Phenylbenzoate esterase activities in hen peripheral nerve.

Certain esterase inhibitors, such as carbamates, phosphinates and sulfonyl halides, do not cause neuropathy as some organophosphates, but they may exacerbate chemical or traumatic insults to axons. This phenomenon is called promotion of axonopathies. Given the biochemical and toxicological characteristics of these compounds, the hypothesis was made that the target of promotion is a phenyl valerate (PV) esterase similar to neuropathy target esterase (NTE), the target of organophosphate induced delayed polyneuropathy. However, attempts to identify a PV esterase in hen peripheral nerve have been, so far, unsuccessful. We tested several esters, other than PV, as substrates of esterases from crude homogenate of the hen peripheral nerve. The ideal substrate should be poorly hydrolysed by NTE but extensively by enzyme(s) that are insensitive to non-promoters, such as mipafox, and sensitive to promoters, such as phenyl methane sulfonyl fluoride (PMSF). When phenyl benzoate (PB) was used as substrate, about 65% of total activity was resistant to the non-promoter mipafox (up to 0.5 mM, 20 min, pH 8.0), that inhibits NTE and other esterases. More than 90% of this resistant activity was sensitive to the classical promoter PMSF (1 mM, 20 min, pH 8.0) with an IC(50) of about 0.08 mM (20 min, pH 8.0). On the contrary, the non-promoter p-toluene sulfonyl fluoride caused only about 10% inhibition at 0.5 mM. Several esterase inhibitors including, paraoxon, phenyl benzyl carbamate, di-n-butyl dichlorovinyl phosphate and di-isopropyl fluorophosphate, were tested both in vitro and in vivo for inhibition of this PB activity. Mipafox-resistant PMSF-sensitive PB esterase activity(ies) was inhibited by promoters but not by non promoters and neuropathic compounds.

Animals↗

Partial purification and characterization of methyl-p-hydroxyphenyllactate esterase in rat uterine cytosol.

Previous studies from this laboratory have shown that methyl-p-hydroxyphenyllactate (MeHPLA) is a bioflavonoid and/or tyrosine metabolite that inhibits both normal and malignant cell proliferation, presumably, by association with nuclear type II [3H]estradiol binding sites. Conversely, the corresponding free acid, p-hydroxyphenyllactate (HPLA) possesses little, if any, cell regulatory activity. Therefore, factors that control the relative concentrations of MeHPLA and HPLA in normal or malignant mammalian tissues may also influence the rate of cellular proliferation. The experiments in this manuscript describe the characterization and purification of MeHPLA esterase from the rat uterus. These studies demonstrate that MeHPLA esterase activity is relatively homogeneous, eluting as a single peak during DEAE ion exchange chromatography and phenyl agarose hydrophobic interaction chromatography. Affi-gel Blue (Cibacron Blue F3GA) affinity chromatography resulted in a significant purification (approx. 300-fold) of the MeHPLA esterase activity, and a combination of these chromatographic steps resulted in a significant purification (> 4300-fold) of this protein. Further analysis of these esterase preparations on nondenaturing agarose gels allowed us to visualize bands of esterase activity. These studies localized one major low-mobility band of esterase activity in rat uterine cytosol preparations, which was increased by estradiol treatment. Furthermore, estrogen induction of MeHPLA esterase in the rat uterus was completely blocked (p < .01) by luteolin, although this bioflavonoid did not affect esterase activity in cytosol preparations from nonestrogenized rats. These results confirm our earlier studies demonstrating that MeHPLA hydrolysis is under estrogen regulation and that bioflavonoids antagonize estrogen action through pathways involving type II site induction and/or the regulation of MeHPLA hydrolysis in normal and malignant cells.

Animals↗

Hydrolysis of plant cuticle by plant pathogens. Purification, amino acid composition, and molecular weight of two isozymes of cutinase and a nonspecific esterase from Fusarium solani f. pisi.

The extracellular fluid of the plant pathogen, Fusarium solani f. pisi, grown on the plant cuticular polymer, cutin, was shown to contain cutinase and p-nitrophenyl palmitate hydrolase activities (R.E. Purdy and P.E. Kolattukudy (1973), Arch. Biochem. Biophys. 159, 61). From this extracellular fluid two isozymes of cutinase and a nonspecific esterase (p-nitrophenyl palmitate hydrolase) were isolated using Sephedex G-100 gel filtration, QAE-Sephadex chromatography, and SE-Sephedex chromatography. Phenolics contained in the extracellular fluid were found to be associated with the cutinase but not with the nonspecific esterase, and the phenolic materials were removed from cutinase at the QAE-Sephedex step. A 34-fold purification of the nonspecific esterase and a 6.5-fold purification of cutinase were achieved by the procedure described. The two isozymes of cutinase (I and II) and the nonspecific esterase were homogeneous as judged by polyacrylamide disc gel electrophoresis and sedimentation equilibrium centrifugation. Molecular weights of cutinase I, cutinase II, and the nonspecific esterase were determined by Sephedex G-100 gel filtration, sedimentation equilibrium centrifugation, amino acid composition, and sodium dodecyl sulfate polyacrylamide disc gel electrophoresis. The values obtained with these techniques agreed with each other and were about 22,000 for both cutinases and 52,000 for the nonspecific esterase. The dodecyl sulfate gel electrophoresis indicated that a small portion of cutinase II contained proteolylic clips, near the middle of the polypeptide chain, and that the nonspecific esterase might also have undergone some proteolylic modification. The amino acid composition of cutinase I was similar to that of cutinase II except for the presence of a larger number of tryptophan residues in the latter, while the amino acid composition of the nonspecific esterase showed more differences from that of either cutinase.

Amino Acids↗