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Studies on ram acrosin. Activation of proacrosin accompanying the isolation of acrosin from spermatozoa, and purification of the enzyme by affinity chromatography.

1. A previously described, freeze-dried, partially purified ram acrosin preparation was fractionated on a column of Sepharose linked to the acrosin inhibitor p-(p'-aminophenoxypropoxy)benzamidine. Two acrosin fractions were obtained. 2. beta-Acrosin was homogeneous, quite stable at low pH and very stable when freeze-dried. Its molecular weight is about 38000, and it contains about six sugar residues per molecule, but no sialic acid. psi-Acrosin consisted of at least three unstable forms of acrosin. 3. When the entire purification process, starting from collection of semen, was carried out as rapidly as possible, the yield of beta-acrosin was increased and very little psi-acrosin was obtained. 4. In fresh ram semen the acrosin is present as the intra-acrosomal zymogen, proacrosin. After its extraction from spermatozoa autoproteolytic reactions convert proacrosin into beta-acrosin; psi-acrosin appears to be breakdown products of beta-acrosin. 5. When beta-acrosin was passed through a column of Sepharose linked to the non-inhibitory deamidinated analogue of the inhibitor it behaved as a hydrophobic protein. This is consistent with our view that acrosin (as zymogen) occurs in spermatozoa as a membrane-bound protein. 6. Success in the isolation of pure acrosin in high yield calls for an affinity adsorbent with the appropriate subsidiary hydrophobic properties.

Acrosin

Effects of acrosin inhibitors on the soluble and membrane-bound forms of ram acrosin, and a reappraisal of the role of the enzyme in fertilization.

When denuded ram spermatozoa were suspended in weakly buffered 0.25M sucrose, the acrosin remained bound to the acrosomal membranes of the sperm heads. Media containing CaCl2 caused complete solubilization of the enzyme. Effects of acrosin inhibitors on soluble and bound enzyme were studied in Tris HCl(pH 8.2) containing sucrose. Denuded spermatozoa were used as a preparation of bound acrosin. Trasylol (Kunitz basic pancreatic trypsin inhibitor) acted more strongly on bound scrosin than on soluble acrosin, but soya-bean trypsin inhibitor acted more strongly on soluble acrosin. At concentrations 0.5 - 2.0muM, the inhibitors isolated from ram acrosomes and from ram seminal plasma inhibited soluble acrosin but had negligible effects on bound acrosin. However, bound acrosin was sensitive to high concentrations of the acrosomal inhibitor. The two forms of acrosin were inhibited to about the same degree by p-aminobenzamidine and also by Tos-Lys-CH2Cl. It is proposed that membrane-bound acrosin is the form that functions in penetration of the zona pellucida, and that a role for acrosin inhibitors is suppression of an antifertility effect of soluble acrosin on mammalian eggs. This hypothesis is supported by 1) the results of work on the impaired fertilizing capacity of rabbit spermatozoa that have been treated with acrosin inhibitors, 2) the anti-fertility effects on hamster eggs of solutions of acrosin and of bovine trypsin, and 3) the results in this paper.

Acrosin

Boar malpha-acrosin. Purification and characterization of the inital active enzyme resulting from the conversion of boar proacrosin to 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.

Acrosin

Influence of boar acrosin antibodies produced in rabbit and sheep on chymotrypsinogen activation catalyzed by acrosin from boar, bull, ram, rabbkt and human.

Activation of bovine chymotrypsinogen is catalyzed with increasing velocity by human, rabbit, boar, bull and ram acrosin. Antiboar-acrosin rabbit gamma-globulins cause a significant reduction in the proenzyme activation rate induced by boar and bull acrosin, but only a weak reduction or none if ram or rabbit acrosin is the activating agent. The antiboar-acrosin gamma-globulins from sheep strongly inhibit chymotrypsinogen activation by ram, bull and boar acrosin, and significantly inhibit the human acrosin-catalyzed reaction.

Acrosin

Activation of chymotrypsinogen by boar acrosin and its prevention by antiboar acrosin rabbit gamma-globulins.

Activation of chymotrypsinogen by bovine trypsin or boar sperm acrosin was followed up using Nalpha-acetyl-L-tyrosine ethyl ester in a highly sensitive test system. Inhibition studies employing antiboar acrosin rabbit gamma-globulins showed the following results. 1) Whereas the acrosin-induced activation velocity was significantly depressed in the presence of the antibodies, the trypsin-catalyzed activation rate was not diminished. 2) The antibodies enhanced the acrosin-catalyzed cleavage rate of BzArgOEt significantly, but not the trypsin-catalyzed cleavage rate of this substrate. 3) Autodigestion of acrosin was considerably reduced in the presence of the antibodies. The enzymatic test system used is especially suitable to study the specificity of acrosin antibodies or their affinity to related enzymes if only small amounts of these substances are available.

Acrosin

Inactivation of boar acrosin by peptidyl-arginyl-chloromethanes. Comparison of the reactivity of acrosin, trypsin and thrombin.

A survey of the reactivity of 16 peptidyl-argininyl-chloromethanes with boar acrosin indicated that these compounds as a general group of reagents were highly effective in the inactivation of acrosin since at least half of the reagents tested rapidly inactivated this protease at a concentration of 0.10 micrometer or lower. For example, Dns-Glu-Gly-ArgCH2Cl inactivates acrosin by 50% in 1.8 min at a concentration of 75 nM, whereas in contrast, a 14000-fold higher concentration of Nalpha-tosyllysyl-chloromethane is required to obtain an equivalent rate of inactivation. A comparison of the reactivity of acrosin and trypsin with the peptides of arginyl-chloromethane containing different substituents in the P2 and P3 positions suggests that the secondary binding sites of these two proteases are very similar. Reagents with homoarginine, lysine and D-arginine in the P1 position have also been prepared and evaluated, but these were considerably less effective than the corresponding arginyl-chloromethanes in the inactivation of both acrosin and trypsin.

Acrosin

Studies on ram acrosin. Isolation from spermatozoa, activation by cations and organic solvents, and influence of cations on its reaction with inhibitors.

1. A simple method is given for isolating from ram spermatozoa a water-soluble form of acrosin (a trypsin-like enzyme) which is about 25% pure. It is free from an acrosin inhibitor which is located in the spermatozoa. 2. In the hydrolysis of N-alpha-benzoyl-l-arginine ethyl ester the degree of activation of acrosin by Ca(2+), and by some other cations, is dependent on the extent of contamination by the inhibitor. In 50mm-Tris-HCl buffer (pH8.2) activation by Ca(2+) did not exceed 40%, but acrosin that is partially inhibited may be activated by up to 300%: this is due to cation-mediated protection of acrosin against the inhibitor. 3. Increasing concentrations of buffers (e.g. Tris) also activate acrosin but at above certain buffer concentrations Ca(2+) no longer exerts an activating effect and may become inhibitory. Ca(2+) is also inhibitory when added to assay systems involving anionic buffers with chelating properties. This is due to a fall in pH. 4. The above results suggest reasons for conflicting conclusions in papers dealing with the effects of Ca(2+) on acrosin activity. 5. Inhibition of acrosin by the Kunitz pancreatic trypsin inhibitor is increased on addition of Ca(2+). Inhibitions of trypsin by the acrosin inhibitor and by the Kunitz inhibitor are insensitive to Ca(2+). 6. Like trypsin, acrosin is activated, up to 60%, by 2-methyl-propan-2-ol, dimethyl sulphoxide, and some other water-miscible solvents. Effects of cations and solvents tend to be additive and a common maximum acrosin activity can be achieved with various concentrations of solvent, salts and buffer in the assay system. Activation by solvents is increased when low concentrations of the acrosin inhibitor are present. 7. Activations of acrosin by salts and by solvents are more pronounced when the substrate is N-alpha-benzoyl-dl-arginine 2-naphthylamide. 8. K(m) values for ram acrosin (about 0.2mm) are much higher than those for trypsin, and k(cat.) values are slightly higher than those for trypsin. Considerations of the influences of ions and dimethyl sulphoxide on the activities and kinetic constants of acrosin and trypsin suggest that conformational changes are the factors mainly responsible for the reported activations of acrosin. 9. The following conclusions are reached. (a) Acrosin plays a role in the penetration of the sperm cell into the egg without becoming detached from the acrosomal membrane. (b) The enzyme is a peripheral membrane protein which may be classed as a cathepsin. (c) The susceptibility of the activity of soluble acrosin to cations and solvents points to a flexible molecule, i.e. one lacking conformational restraints imposed by association (presumably ionic) with the acrosomal membrane.

Acrosin

Enhancement of sperm acrosin activity by glycerol-pretreatment - quantitative estimations.

Acetic acid treatment of spermatozoa, a method suitable for optimal extraction of the acrosomal proteinase acrosin, was used to show the influence of glycerol on sperm acrosin activity. Short-time pretreatment of semen samples with glycerol in concentrations up to 35% (v/v) caused a 1.5-2.5 fold increase in sperm acrosin activity. Higher glycerol concentrations caused a decrease in sperm acrosin activity due to leakage of the enzyme into the suspension medium. A further increase in sperm acrosin activity was observed during aging of semen in the presence of glycerol. In this case, the height of the increase depends on the glycerol concentration applied as well as incubation temperature and time. The acrosin activation pattern induced by glycerol was not influenced by proteinase (acrosin) inhibitors. On the other hand, addition of glycerol to spermatozoa from which the seminal plasma had been removed and substituted by physiological saline caused only a small increase in sperm acrosin activity. This indicates the occurrence of a seminal plasma factor which is either stimulated (activated) by glycerol or which can penetrate the membranes and subsequently activate acrosin only in the presence of glycerol. This seminal plasma factor was not consumed during activation and could be transfered to another sperm sample. However, a protecting influence of such a factor on the sperm head membranes and thus an indirect activation effect, i.e. better extractibility of acrosin, has also to be considered. The glycerol-induced rise of the acrosin activity is not caused by reversible conformational changes of the enzyme molecules: acrosin activity was not diminished if glycerol was removed from semen samples or extracts later on. The possibility that the observed increase in BAEE-splitting activity is due to a so far unknown proteinase may be excluded: the activity completely disappeared by neutralization due to formation of the acrosin-inhibitor complex and appeared again by acidification, a well known characteristic of acrosin and its inhibitors. Factors which are probably responsible for the glycerol-induced activation of acrosin-membrane effects and the activation of a precursor from of acrosin-are discussed.

Acrosin

Human sperm acrosin. Further studies with the clinical assay and activity in a group of presumably fertile men.

The goals of this study were to determine the effect of the nonionic detergent, Triton X-100, on the recovery of acrosin in the clinical assay (Kennedy et al, 1989), since previous investigations have used higher concentrations for acrosin extraction from spermatozoa; and to establish the minimal acrosin activity in fertile men. The recovered acrosin activity was dependent on the concentration of Triton. A peak in acrosin activity was obtained at 0.01% to 0.02% Triton, the approximate critical micelle concentration (CMC; 0.015%). The bimodal effect of Triton was not due to substrate/buffer alterations, to the degree of acrosomal disruption as assessed by light and transmission electron microscopic examination, or to its effect on the kinetic properties of acrosin, as determined by spectrophotometric analysis of acid-extracted enzyme. However, Triton affected the conversion of proacrosin to acrosin, with peak activation occurring at 0.01% to 0.02% detergent. The acrosin activity of a group of presumably fertile men (as established by the production of offspring under natural conditions) varied from 18 to 42 microIU/10(6) spermatozoa, as assessed by the clinical assay containing 0.01% Triton. Furthermore, men who had initial acrosin values in the low normal range (18 to 25 microIU/10(6) sperm) were observed for 11 months. The acrosin activity of their ejaculates never fell below 17 microIU/10(6) sperm. Thus, it can be tentatively assumed that the minimal levels of acrosin for naturally fertile men are 17 to 18 microIU acrosin/10(6) sperm in this assay.

Acrosin

Acrosin of mouse spermatozoa.

Mouse spermatozoa possess a neutral proteinase, acrosin, that is to a large extent (70-80%) present in the zymogen (proacrosin) form. Acid extraction yields higher amounts of acrosin than detergent extraction. Synthetic inhibitor studies indicate that mouse acrosin has a serine and histidine at its active site and hydrolyzes the peptide bonds of lysine and arginine but of not phenylalanine. An inhibitor of acrosin is associated with mouse spermatozoa, capable of preventing the activity of at least 60% of all available acrosin. Acrosin activity is essential for fertilization because natural and synthetic inhibitors of mouse acrosin prevent the union of the gametes. Also, the relative inhibitory activity of synthetic agents toward acrosin runs approximately parallel to their antifertility activity. The percent of acrosin in the proacrosin form does not change after capacitating mouse spermatozoa in vitro.

Acrosin

Acrosin activity of cryo-preserved human spermatozoa.

The acrosin activity of human spermatozoa was determined in fresh, glycerolated, and cryo-preserved semen specimens. In 119 semen specimens, mean increases in acrosin activity of 62% in glycerolated and 56% in cryo-preserved samples were found. Thus, no statistically significant differences in mean acrosin activity were found between glycerolated and cryo-preserved spermatozoa. However, 23.5% of the cryo-preserved samples showed a significant decrease in extractable acrosin activity when compared with untreated controls. In oligospermic specimens (less than 40 million spermatozoa/ml), a statistically significant decrease in acrosin activity due to cryo-injury was detectable. Differentiation of specimens responding to glycerol pretreatment with an increase in extractable acrosin activity from those responding with a decrease showed a different freezing behavior, indicating two ejaculate types with respect to acrosin extraction. Samples frozen without glycerol protection showed the same amounts of extractable acrosin activity as did glycerol-protected specimens. The stability of acrosin in acidic acrosomal extracts during liquid nitrogen freeze treatment was confirmed.

Acrosin

Distribution and removal of the acrosin of bull spermatozoa.

The effects of Hyamine 2389, Triton X-100, Nadeoxycholate, acetic acid and hypertonic KCl and MgCl2 as well as freezing and thawing and sonication were studied on the solubilization of acrosin from washed bull spermatozoa, from Hyamine-pretreated spermatozoa (devoid of cell and outer acrosome membrane and of acrosomal material) and from isolated acrosomal caps and vesicles. Concurrent ultrastructural changes were observed. Hyamine, Triton, KCl, and acetic acid effectively solubilized acrosin from whole spermatozoa but MgCl2 had a poor effect. The outer acrosome membrane and acrosomal material extracted by Hyamine contained about 35-40% of the total acrosin activity, and three quarters of it was soluble. The rest of acrosin situated in the innter acrosome membrane or equatorial segment was best extracted by hypertonic KCl and MgCl2, but the detergents were ineffective in this case indicating that acrosin is bound differently to the outer and inner parts of acrosome. The opposite effect of MgCl2 on the acrosin activities extracted from these two parts could even be a suggestion of multiple forms of acrosin. The increase of the total acrosin activity during the Hyamine treatment indicates that acrosin is partly in an inactive form. due either to steric hindrance, inhibitor complex of existence of a proacrosin.

Acetates

Multiple forms of human acrosin: isolation and properties.

Human acrosin was purified to electrophoretically homogeneous forms by acidic extraction of washed ejaculated spermatozoa and gel filtration of the acidic extracts on Sephadex G-75, followed by affinity chromatography on p-amino-benzamidine Sepharose. Human acrosin exists in at least four molecular forms. The apparent molecular weights of three forms were determined to be 64 000, 38 000 and 25 000, respectively. The high molecular weight form is transformed to the low molecular weight forms by incubation of the acrosin preparation obtained from freshly ejaculated spermatozoa in solutions of pH near 7. Like boar acrosin, human acrosin is also a glycoprotein and therefore reversibly bound to Concanavalin A-Sepharose. The amino acid composition of the 25 000 molecular weight form is similar to that of human trypsin. Rabbit anti-boar-acrosin gamma-globulins form a precipitate with human acrosin, but not with porcine trypsin or human plasmin. The relationship between the occurrence of multiple acrosin forms and proenzyme activation by limited proteolysis is discussed.

Acrosin

Hydrolysis of the hen egg vitelline membrane by cock sperm acrosin and other enzymes.

A technique utilizing Pregnant Mare's Serum Gonadotropin and Human Chorionic Gonadotropin treatment of hens (Gallus domesticus), followed by manual ovulation of the excised follicles, was developed to obtain a large number of mature ova. The intact ova were used to test whether acrosin, partially purified from the spermatozoa of the cock (Gallus domesticus), partially purified rabbit testicular acrosin and commercial preparations of several hydrolytic enzymes could dissolve the inner vitelline membrane. Enzymes were applied to pieces of filter paper placed on the ovum. Cock acrosin and endopeptidases such as trypsin, chymotrypsin, collagenase and elastase hydrolyzed the membrane whereas exopeptidases such as leucine aminopeptidase and carboxypeptidase A did not. Phospholipase A, sulfatase, hyaluronidase, beta-glucuronidase and rabbit testicular acrosin also failed to hydrolyze the membrane. Cock acrosin hydrolysis of the ovum surface was inhibited by soybean trypsin inhibitor. The surface of the ovum over the germinal disc region was hydrolyzed more quickly by cock acrosin than the surface over other regions of the ovum. Acrosin from cock sperm caused the release of trichloroacetic acid soluble material absorbing at 280 nm from sonicated preparations of inner vitelline membranes. Hydrolysis was greatest at pH 8.0 and was inhibited by soybean trypsin inhibitor.

Acrosin

Studies on ram acrosin. Fluorimetric titratiion of operational molarity with 4-methylumbelliferyl p-guanidinobenzoate.

1. Titration in sodium barbiturate buffer of acrosin, a serine proteinase from sperm acrosomes, with the ester substrate 4-methylumbelliferyl p-guanidinobenzoate gave rise to an incomplete 'burst' of 4-methylumbelliferone. Studies of the effects on the reaction of activators of acrosin (Ca2+, water-miscible solvents) showed that titrations carried out in barbiturate buffer containing 1M-CaCl2 and diluted with 0.2 vol. of dimethylsulphoxide produced a rapid quantitative burst within 4 min at 20 degrees C. 2. The net post-burst production of 4-methylumbelliferone was neglibible because (a) the acyl-enzyme was very stable, and (b) the slow post-burst formation of 4-methylumbelliferone (turnover of acyl-enzyme) was virtually equal to the slow photolytic destruction of 4-methylumbelliferone that was liberated during the burst. 3. The standard procedure permits titrations of 20-100pmol of acrosin, i.e. amounts normally taken for conventional rate assays, and with these amounts the impurities present in crude enzme fractions did not interfere. The burst was judged to be quantitative on the basis of comparisons with titrations of acrosin with p-nitrophenyl p'-quanidinobenzoate. 4. The burst reaction of trypsin with the 4-methylumbelliferyl ester was inhibited by high Ca2+ concentrations and by dimethyl sulphoxide. 5. The association and dissociation of complexes of both acrosin and trypsin with protein-type inhibitors (Kunitz pancreatic trypsin inhibitor and a spermatozoal acrosin inhibitor) are rather slow. It is thus possible, in certain cases, to use the ester to titrate both total enzyme in an inhibitor-enzyme mixture and net enzyme, i.e. the stoicheiometric excess of enzyme over inhibitor.

Acrosin

Active immunization of female rabbits with purified rabbit acrosin and effect on fertility.

Acrosin immunogen was purified from rabbit testes by sequential acid extraction, ammonium sulfate fractionation, cation-exchange, and affinity chromatography. Twelve females received intradermal injections of purified acrosin in Freund's complete adjuvant followed by a booster injection 6 weeks later. A radioimmunoassay for rabbit acrosin was developed and used to monitor the immune response of the recipients. The females were mated at the time when serum titers of acrosin antibodies were maximal. Four of the animals did not become pregnant, and three of these had the highest antibody titers in the total group. The remaining eight rabbits delivered normal litters at term. Of four control females (immunized with bovine serum albumin), one did not become pregnant. The pregnancy rates for the control and acrosin-immunized rabbits were 75% and 67%, respectively. It is concluded that, although active immunization with acrosin had no significant effect on fertility, the antibody titer produced may be a factor.

Acrosin