PubMed Health⌕ Search

Biomedical subjects

J Bieth

Publications and source records attributed to J Bieth.

At least 19 recordsLinked to original sources

Localization of the proteinase-induced thiol groups in alpha 2-macroglobulin.

Free thiol groups released on proteolytic attack of alpha 2-macroglobulin by trypsin or chymotrypsin bind covalently to thiopropyl-Sepharose, indicating that they are located at the surface of the complexes. These cysteine sulfhydryl groups appear to be in contact with the alpha 2M-bound proteases from singlet-singlet energy transfer measurements between fluorescein isothiocyanate-labeled proteinases and N-(iodoacetylaminoethyl)-5-naphtylamine-1-sulfonic acid-labeled thiols in alpha 2-macroglobulin.

Binding Sites↗

The effect of alpha 2-macroglobulin on the interaction of alpha 1-proteinase inhibitor with porcine trypsin.

The rate of dissociation of the alpha 1-proteinase inhibitor:porcine trypsin complex was compared with that in the presence of alpha 2-macroglobulin. In the presence of the latter inhibitor the dissociation was more rapid and active alpha 1-proteinase inhibitor could be recovered in the mixture. However, no active inhibitor could be detected after dissociation in the absence of alpha 2-macroglobulin. This recovery of active alpha 1-proteinase inhibitor from complexes with porcine trypsin is the first demonstration of a thermodynamic equilibrium between this inhibitor and proteinase. Consequently, the transfer of trypsin from complexes with alpha 1-proteinase inhibitor to alpha 2-macroglobulin may be explained as a passive phenomenon which does not require a physical collision between alpha 2-macroglobulin and the alpha 1-proteinase inhibitor:porcine trypsin complex. The dissociation of the complex occurs more rapidly in the presence of alpha 2-macroglobulin because this inhibitor complexes trypsin leaving the alpha 1-proteinase inhibitor:porcine trypsin complex by both the irreversible breakdown step and by reversible dissociation of the complex.

Animals↗

Localization of the two protease binding sites in human alpha 2-macroglobulin.

The distance between the two protease binding sites in human plasma alpha 2-macroglobulin has been estimated using singlet-singlet energy transfer experiments. alpha-Chymotrypsin was labeled covalently with donor (dansyl chloride) or acceptor (fluorescein isothiocyanate) groups, and the efficiency of transfer between these dyes was measured within the alpha 2-macroglobulin . (alpha-chymotrypsin)2 complex. The distance between the surface exterior of the protease molecules was calculated to be 4 to 11 A, depending on the assumption made about the equivalence of the binding sites. A catalytically active dimer of alpha-chymotrypsin was prepared using the heterobifunctional reagent N-succinimidyl-3-(2-pyridyldithio)propionate. In contrast with the alpha-chymotrypsin monomer, it binds to alpha 2-macroglobulin with a 1:1 stoichiometry. However, the 1:1 alpha 2-macroglobulin . dimeric alpha-chymotrypsin complex is still able to bind 1 mol of the alpha-chymotrypsin monomer. Energy transfer experiments performed with this ternary complex showed that the distance between the alpha 2-macroglobulin-bound alpha-chymotrypsin molecules is not higher than 4 A, i.e. the two protease binding sites in alpha 2-macroglobulin should be about 44 A apart (center to center) if the anhydrous radius of alpha-chymotrypsin is 20 A.

Animals↗

Kinetics of association of serine proteinases with native and oxidized alpha-1-proteinase inhibitor and alpha-1-antichymotrypsin.

The association rate constants for the interaction of alpha-1-proteinase inhibitor, oxidized alpha-1-proteinase inhibitor, and alpha-1-antichymotrypsin with several mammalian serine proteinases have been determined. The results indicate that leukocyte elastase reacts more rapidly with alpha-1-proteinase inhibitor than any other proteinase tested, while leukocyte cathepsin G shows the strongest association with alpha-1-antichymotrypsin. Oxidation of the critical methionine residue of alpha-1-proteinase inhibitor reduces the association with leukocyte elastase by a factor of more than 2000 and also lowers the association with all of the other enzymes tested with the exception of chymotrypsin. Significantly, oxidation completely abolishes any interaction of alpha-1-proteinase inhibitor with porcine elastase, human plasmin or human thrombin. These data support previous results (Johnson, D., and Travis, J. (1979) J. Biol. Chem. 254, 4022-4026) which indicated that oxidation of human alpha-1-proteinase inhibitor in vivo could reduce the effectiveness of this inhibitor in controlling proteolysis. In the lung, in particular, oxidizing agents of both chemical and biological sources could, indirectly, augment elastolysis in this tissue, resulting in the development of pulmonary emphysema.

Animals↗

The indirect mechanism of action of the trifluoroacetyl peptides on elastase. Enzymatic and 19F NMR studies.

Trifluoroacetyl (CF3CO) dipeptide anilides are potent reversible inhibitors of elastase. Their 19F NMR spectra in the presence of the enzyme correspond therefore to slow chemical exchange. Their characteristics are very similar to those previously reported for other CF3CO-peptides. This should correspond to a single binding mode, in which the CF3CO group lies in a specific site in close contact with protein protons. Elastase, irreversibly inhibited by alkylation of Ser-195 with phenylsulfonyl fluoride derivatives, binds the CF3CO-Ala-containing dipeptide anilides still more tightly than the native enzyme. It no longer binds the dipeptide anilides containing a bulky CF3CO-Lys group, suggesting a location of the CF3CO site near the S1 subsite. On the other hand, the chemical shift of the CF3CO 19F resonance in the complex is the only NMR property affected by the enzyme sulfonylation, the T1 and nuclear Overhauser effect values being unmodified as compared to those in the complexes with the native enzyme. The observation of the NMR characteristics of elastases inhibited by phenylsulfonyl groups substituted with fluorine shows that complexation with CF3CO-peptides induces a change of conformation of the catalytic site which should correspond to a displacement of His-57 toward the ortho position of the phenylsulfonyl ring. Such a transconformation is not observed with corresponding acetylated peptides. The phenylsulfonyl fluoride derivatives are still able to react with elastase in the presence of a large excess of CF3CO-peptides. In such conditions the rate of inactivation is much slower but still at least 5% of that measured in the absence of the reversible inhibitors. This residual activity is hardly compatible with the presence of two exclusive modes of interaction of the CF3CO-peptides with native elastase. On the contrary, these observations are better interpreted by a single and identical mode of binding of the peptide to the native and sulfonylated enzymes. According to this mode of binding, the reversible inhibition of elastase by CF3CO-peptides should correspond to an indirect mechanism by which a change of conformation at the active site results in a reduced catalytic activity.

Animals↗

[Problems in intensive care posed by imbalance in the protease--protease inhibitor system].

Proteases have a wide range of functions: digestion (pancreatic proteases), protein catabolism (lysosomal proteases), blood coagulation, immune defences (complement), cellular division and proliferation, generation of biologically active oligopeptides (kinins, hormones) from inactive polypeptide precursors, inactivation of these oligopeptides, etc. The body protects itself against its own proteases, either by confining them to a given compartment (lysosome), by synthesising them in the form of inactive precursors (trypsinogen, prothrombin, etc.), or by synthesising proteins with an antiprotease activity. Any disturbance in one of the elements of this protective system may lead to severe pathological consequences: acute hemorrhagic pancreatitis with shock, coagulation disturbances (deficient hepatic synthesis of coagulation factors, congenital antithrombin III deficiency), angioneurotic oedema (congenital deficiency of C'l esterase inhibitor) pulmonary emphysema (local secretion of leukocyte elastase, congenital deficiency of alpha a-antitrypsin).

Angioedema↗

Rotational relaxation of free and protease-bound alpha2-macroglobulin.

The recently described triplet probe depolarization technique has been utilized to investigated the rotational relaxation of free and protease-bound alpha2-macroglobulin. The molecular Stokes radius of the free globulin was found to be 88 A, a value which, when compared to the dry radius, indicates a high degree of hydration. The correlation time of alpha2-macroglobulin does not change after its binding with chymotrypsin, but slightly increases in the presence of plasmin. In the presence of 4 M urea, alpha2-macroglobulin dissociates into subunits and this dissociation does not lead to a release of the bound proteases.

Chymotrypsin↗

On the inhibition of human leukocyte elastase by trifluoroacetyl tripeptides.

The recently reported Ki values for human leukocyte elastase and a series of trifluoroacetylated peptides are erroneous because the enzyme preparation was contaminated by a small amount of porcine pancreatic elastase. The correct Ki values are much higher. However, trifluoroacetylated peptides are still much more potent inhibitors than the corresponding acetylated peptides.

Animals↗

Trifluoroacetyl tripeptides as potent inhibitors of human leukocyte elastase.

Trifluoroacetylated peptides are much more potent inhibitors of human leukocyte elastase than the corresponding unblocked, acylated or benzyloxycarbonylated peptides. The most active compound was trifluoroacetyl-Val-Tyr-Val (Ki = 1.3 micron). A number of free and NH2-terminal-substituted peptides exhibited similar affinities for porcine pancreatic and human leukocyte elastase, indicating that these two enzymes must have similar specificity sites.

Animals↗

Kinetics of the inactivation of human and bovine trypsins and chymotrypsins by alpha1-proteinase inhibitor and of their reactivation by alpha2-macroglobulin.

The time dependency of inactivation of human cationic trypsin and chymotrypsin II and of bovine trypsin and alpha-chymotrypsin by human serum has been investigated. Since the molar concentration of serum alpha1-proteinase inhibitor is much higher than that of other inhibitors, this time dependence could be used to calculate the rate constants kass for the association of alpha1-proteinase inhibitor with the four proteases. The association process was found to be second order, with kass ranging from 1 x10(4) s-1 (human trypsin) to 2.6 x 10(6) s-1 (bovine chymotrypsin). The human proteases react much more slowly with human alpha1-proteinase inhibitor than the bovine ones. But, whatever the species, chymotrypsin is inhibited more quickly than trypsin. Addition of alpha2-macroblobulin to the inactive complexes resulted in a time-dependent regeneration of enzymic activity due to the formation of alpha2-macroglobulin-protease complexes. The reactivation (i.e. dissociation) process was first order and extremely slow: the half-life of the alpha1-proteinase inhibitor-proteinase complexes ranged from 8 days (bovine chymotrypsin) to 9 months (human chymotrypsin). The human proteases formed the most stable complexes with alpha1-proteinase inhibitor. The pathological implications of these findings are discussed.

Animals↗

Purification of alpha 2-macroglobulin with trypsin-like activity from pleural fluids.

An alpha 2-macroglobulin with trypsin-like activity has been purified from pleural fluids of patients suffering from chronic pancreatitis. The isolation procedure includes ammonium sulphate precipitation, gel-filtration on Sephadex G-200 and DEAE-cellulose chromatography. It gives 46-fold purification of alpha 2-macroglobulin with a 13% recovery. Based on titration experiments with pancreatic inhibitor, the protein from three different patients contained 0.28, 0.46 and 0.80 mol of trypsin-like protease per mol of alpha 2-macroglobulin.

Chromatography, Gel↗

A kinetic study of the inhibition of human and bovine trypsins and chymotrypsins by the inter-alpha-inhibitor from human plasma.

Human plasma inter-alpha-inhibitor forms 1:1 inactive complexes with human and bovine trypsins (EC 3.4.21.4) and chymotrypsins (EC 3.4.21.1). The association and dissociation rate constants as well as the equilibrium dissociation constants (Ki) of the complexes formed of inter-alpha-inhibitor and the four proteases have been measured. The most stable complexes are those formed with the bovine enzymes. For instance, Ki = 2.1-10-11 M for bovine trypsin whereas Ki = 1.2 - 10-8 M for human trypsin. Whatever the species, the complexes formed with the chymotrypsins are less stable than those formed with the trypsins.

Animals↗