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Biomedical subjects

J Bieth

Publications and source records attributed to J Bieth.

At least 37 records · Page 2Linked to original sources

Trifluoroacetylated peptides as substrates and inhibitors of elastase: a nuclear magnetic resonance study.

Trifluoroacetyl di- and tripeptides have been synthesized in order to investigate their interactions with elastase by proton and fluorine magnetic resonance. These substituted peptides behave as substrates or inhibitors of the enzyme, depending upon their length. They are hydrolyzed with production of trifluoracetic acid and unsubstituted parent peptides exclusively. The amino acid specificity observed and the absence of hydrolysis in the presence of an enzyme substituted at the serine residue of the active site indicate that the trifluoracetic hydrolysis occurs at this site. It requires the fixation of the C-terminal amino acids at the two S' subsites, as does the peptidic hydrolysis of unsubstituted or acetylated oligoalanines. Trifluoracetyl tripeptides exhibit a much higher affinity for the protein, as compared with the unsubstituted or acetylated peptides as well as compared with the trifluoroacetyl dipeptides, and they act as powerful inhibitors of the enzyme. The inhibitory binding mode has been shown to involve the fixation of the trifluoroacetyl group at subsite S4 or in its vicinity, allowing for the cooperative fixation of the C-terminal alanine at S1 and the accommodation of a transproline at S2.

Binding Sites↗

On the inhibition of elastase by serum. Some distinguishing properties of alpha1-antitrypsin and alpha2-macroglobulin.

1. The influence of serum on the elastolytic and esterolytic activity of elastase has been studied. With both substrates the inhibition curves are linear. 1 ml of normal human serum inhibits the activity of 0.77 mg of pure porcine elastase. 2. Elastase binds faster with alpha2-macroglobulin (k = 3.4-10(6) M-1 S-1) than it does with alpha1-antitrypsin (k = 5-10(5) M-1 S-1). 3. The dissociation constant of the alpha-antitrypsin -elastase complex is much lower than that of the alpha2-macroglobulin-elastase complex but both complexes are very stable (Ki less than 10(-10) M). 4. Protein pi (inter-alpha-inhibitor) does not inhibit elastase.

Animals↗

Separation of two new trypsin-inhibiting fractions from human serum.

Trace amounts of two unknown trypsin-inhibiting fractions have been separated from pooled human serum by DEAE-Sephadex chromatography. They are immunologically different from alpha1-antitrypsin, alpha2-macroglobulin or inter-alpha-trypsin inhibitor and they form two well separated peaks after rechromatography on DEAE-Sephadex column. Both of these fractions also inhibit chymotrypsin but not elastase. Their relation to other trypsin inhibitors of human serum is discussed.

Animals↗

[Trypsin-induced polyseritis: action of di-iso-propyl-fluorophosphate; evolution of the proteas activity of effusion; comparison with elastase].

1. Whereas the injections of trypsin in the peritoneum of the rat cause every time a polyseritis (ascites and pleuritis) the trypsin inactivated by di-iso-propyl-fluoro-phosphate remains without effect; this fact proves therefore that the proteasic properties of the trypsin are responsible of this exsudative effect on peritoneum and pleura. 2. The intra-peritoneal injections of elastase cause also a polyseritis in the rat, but it is complicated by shock. 3. The dosage of the proteasic activity in the effusions caused by the trypsin and the elastase, shows a progressive reduction of this activity. At the beginning there is more protease in the ascites than in pleural serositis and the volume of the ascites is greater; later, the findings about the proteases are opposite and the protease content becomes greater in the pleural effusion. This evolution is a new proof of the transdiaphragmatic propagation of the proteasic polyseritis.

Animals↗

Photoregulation of biological activity by photochromic reagents, IV. A model for diurnal variation of enzymic activity.

Levels of acetylcholinesterase activity can be made to vary in response to the presence or absence of sunlight in a system that can be considered as a model for photoperiodic processes found in nature. The enzyme is rendered photosensitive by the presence of a photochromic inhibitor, N-p-phenylazophenylcarbamyl choline, which changes from a trans to a cis isomer under the influence of the light of the sun and reverts back to the trans isomer in the dark. The two isomers differ in their ability acetylcholinesterase, thus rendering the enzyme system responsive to sunlight. The relationship of this system to photoresponsive processes in nature is discussed, and a possible role in photoregulation is suggested for naturally occurring carotenoids.

Acetylcholinesterase↗