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H Fritz

Publications and source records attributed to H Fritz.

At least 235 records · Page 13Linked to original sources

Isolation and characterisation of a low molecular weight inhibitor (of chymotrypsin and human granulocytic elastase and cathepsin G) from leeches.

Two protein proteinase inhibitors were isolated and purified from the leech Hirudo medicinalis by means of gel filtration and ion-exchange chromatography. They inhibit chymotrypsin, subtilisin and the granulocytic neutral proteases elastase and cathepsin G. They proved to be homogeneous in polyacrylamide and dodecylsulfate gel electrophoresis and by end group analysis; only threonine was found as N-terminal amino acid residue using the dansylation technique. These inhibitors, which we call eglins, are stable in neutral and weakly acid (pH 3) solutions and resist non-specific proteolysis. From the amino acid compositions, a molecular weight of 6 600 - 6 800 is calculated for both inhibitory proteins, which is in good agreement with a value of about 6000 estimated by dodecylsulfate electrophoresis. The eglins contain an unusually large amount of hydrophobic amino acid residues but no methionine, isoleucine or--a rarity--cysteine residues or disulfide bridges. To our knowledge, the eglins are the first examples of proteinase inhibitors of the protein type which are not stabilized by disulfide bridges.

Amino Acids↗

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↗

Sperm acrosin.

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Acrosin↗

Amino-acid sequence of a coelenterate toxin: toxin II from Anemonia sulcata.

Toxin II from Anemonia sulcata, the main component of the sea anemone venom, consists of 47 amino acid residues which are interconnected by three disulfide bridges. The S-aminoethylated polypeptide was coupled to activated glass beads and sequenced to position 33 by automated solid-phase Edman degradation. Blanks arising from anchor points and the rest of the sequence were determined from tryptic peptides of the [14C]carboxymethylated toxin. Toxin II shows no significant homologies with other known sequences of neurotoxins or cardiotoxins. It might constitute a new class of polypeptide toxins.

Amino Acid Sequence↗

Localization of low molecular weight acrosin-trypsin inhibitors in the boar genital tract by immunofluorescence.

Using the indirect immunofluorescent technique, the occurrence and distribution of the low molecular weight acid-stable acrosin inhibitors from boar seminal plasma (BSAI) in the boar genital tract was studied applying specific inhibitor-directed rabbit-immunoglobulins. The acrosin inhibitors are localized in the mucosa cells of the cauda epididymis, the vas deferens, the seminal vesicles, the urethra and distinct glandular units of the prostate. The wide distribution of the acrosin inhibitors within the boar genital tract indicates a protective function towards the destructive proteolytic potential of acrosin liberated e.g. during sperm aging from desintegrating spermatozoa.

Acrosin↗

Multiple forms of boar acrosin and their relationship to proenzyme activation.

Further evidence is presented that the acrosomal proteinase acrosin exists as a zymogen precursor in freshly ejaculated boar spermatozoa. Autoactivation of proacrosin to acrosin takes place optimally at slightly alkaline pH and in the presence of calcium ions. Activation is considerably accelerated by catalytic amounts of trypsin or highly purified acrosin. A significant acceleration of the activation is also achieved by porcine pancreatic and urinary kallikrein, whereas chymotrypsin, plasmin, thrombin or urokinase showed no effect. Activation can be inhibited by p-amino-benzamidine and p-nitrophenyl p'-guanidino-benzoate. Electrophoretic analysis at different stages of activation revealed that during this process various molecular forms of acrosin are produced, apparently by limited proteolysis.

Acrosin↗