Amidino-substituted aromatic heterocycles as probes of the specificity pocket of trypsin-like proteases.
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Biomedical subjects
Publications and source records attributed to R F Parrish.
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Acrosin is a proteinase required for mammalian fertilization, and in freshly ejaculated spermatozoa exists as an inactive zymogen, proacrosin. A factor prsent in uterine flushings of gilts stimulates the conversion of highly pruified boar proacrosin to acrosin. Characterization of this factor indicates that its active component is a glycosaminoglycan.
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The conversion of human proacrosin to acrosin was inhibited by polyamines. The order of effectiveness was spermine greater than spermidine greater than cadaverine greater than putrescine greater than 1,3,-diaminopropane. These results are similar to those obtained for the conversion of boar proacrosin to acrosin. Unlike the effects on boar acrosin, however, polyamines did not affect the esterolytic activity of human acrosin but had a slight stimulatory effect on the proteolytic activity of human acrosin.
The preparation of highly purified malpha-acrosin is described. Purification was achieved by controlled activation of partially purified proacrosin, followed by gel chromatography over Sephadex G-100 at pH 3.0. The final malpha-acrosin preparation resulted in a single protein band with a molecular weight of 49,000 as determined by sodium dodecyl sulfate-disc gel electrophoresis. Disc arginine naphthylamide hydrolyzing band with a relative migration of 0.39 malpha-acrosin catalyzed the hydrolysis of synthetic substrates containing arginine and lysine, but not phenylalanine. Although calcium ions were not required for enzymatic activity, the addition of calcium chloride stimulated the activity through an increased substrate affinity and an increased maximal velocity. Polyamines stimulated the maximal velocity of the reaction, but were without effect on the substrate affinity. malpha-Acrosin was inhibited by lima bean, ovo-mucoid, and seminal plasma proteinase inhibitors. Diisopropyl fluorophosphate and 1-chloro-3-tosylamide-7-amino-L-2-heptanone treatment resulted in an irreversible inhibition, while L-arginine, benzamidine, and p-aminobenzamidine were competitive inhibitors with respect to substrate. These properties of malpha-acrosin are very similar to those previously reported for mbeta-acrosin and suggest that the portion of the molecule lost during the conversion of malpha-acrosin to mbeta-acrosin contributes little to the topography of either the active site or regulatory sites of the enzyme.
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A series, consisting of 52 benzamidine derivatives, was evaluated for inhibitory activity against homogeneous boar sperm acrosin. All of the compounds in the series proved to be more potent than benzamidine (Ki = 4.0 x 10(-6) M), with one of the derivatives, alpha-(4-amidino-2,6-diiodophenoxy)-3-nitrotoluene (compound 16), showing outstanding potency with a Ki value of 4.5 X 10(-8) M. Although all of the derivatives were effective acrosin inhibitors, structural specificity was observed within homologous groups of compounds. The information gained from this preliminary study should prove extremely beneficial in the design and synthesis of future acrosin inhibitors.
Aqueous dispersions of synthetic phospholipids, in the form of anionic, single bilayer vesicles, were observed to stimulate the appearance of acrosin esterase activity from its zymogen precursor, proacrosin. Enzymatic activity measurements, in parallel with polyacrylamide disc gel electrophoresis in the presence of sodium dodecyl sulfate, indicated that the enzymatic activity produced had resulted from the conversion of proacrosin to acrosin (EC 3.4.21.10), and not from the direct stimulation of a possible proacrosin esterase activity. It is suggested that such bilayer lipid vesicles can be used as a model membrane system to study the activation of proacrosin in vitro.
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Two forms of proacrosin have been purified from ejacualted boar spermatozoa. The isolation method utilized benzamidine to inhibit the premeture activation of the zymogen and included pH precipitation, ammonium sulfate fractionation, and sodium chloride precipitation. Further purification was achieved by Sephadex G-200 FILTRATION OF THE PREPARATION AFTER IT WAS TREATED WITH 8 M urea. The overall proacrosin yield was 58% with a specific acitivity of 253 units/mg of protein. The molecular weights of the proacrosins determined by sodium dodecyl sulfate disc gel electrophoresis were 55,000 and 53,000. Proacrosin autoactivation followed the classical S-shaped activation curve and calcium was not required to obtain full activation. Time course activation studies in 0.1 M Tris/HCl, pH 8.4, at 0 degrees were monitored with sodium dodecyl sulfate-disc gel eletrophoresis and anlytical gel electrophoresis with staining techniques for protein and enzymatic activity. Under the conditions used, the zymogens were sequentially degraded to three different active specise of acrosin (alpha, beta, and gamma). The approximate molecualr weights of the acrosins were 49,000, 39,000, and 25,000 for the alpha, beta, and gamma forms, respectively. The autoactivation is concentration-dependent and can be proteolytically stimulated with either alpha- or beta-acrosin and trypsin, indicating the activation of proacrosin can via a bimolecular process.
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The interaction between pyridoxal 5'-phosphate and the convertible serine of glycogen phosphorylase has been investigated by using: specific interconverting enzymes, phosphorylase kinase and phosphorylase phosphatase; effectors, glucose and glucose 6-phosphate; and a protein kinase and trypsin. Both phosphorylase kinase and phosphorylase phosphatase utilized the native protein while having little influence on the apoprotein. Removal of a peptide containing the critical serine residue gave phosphorylase b' from which the pyridoxal 5'-phosphate in phosphorylase has an important effect on enzymic interconversion.