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Biomedical subjects

T Podleski

Publications and source records attributed to T Podleski.

9 recordsLinked to original sources

Ascorbic acid mediates acetylcholine receptor increase induced by brain extract on myogenic cells.

Extracts of fetal calf brain cause a 3- to 5-fold increase in acetylcholine receptors (AcChoR) on cultured myogenic L5 cells. Purification of the substance causing the major portion of this receptor increase has been completed. Ultraviolet spectral characteristics, nuclear magnetic resonance, mass spectra, and AcChoR induction by the active factor are the same as those of commercially available ascorbic acid. The biological activity of ascorbic acid is not mimicked by reducing agents with or without sulfhydryl groups. Compounds related to ascorbic acid were tested for their ability to induce AcChoR increases on L5 cells. D-Isoascorbic acid is the only substance with identical biological activity to ascorbic acid. Dehydroascorbic acid and ascorbic acid 2-O-sulfate also induce AcChoR increases but with lower specific activity. These data show that ascorbic acid can play a role in regulating AcChoR expression in myogenic tissue, and the presence of ascorbic acid in the purified fraction from fetal calf brain accounts for its ability to increase AcChoR in L5 cells.

Animals↗

A specific decrease of the fluorescence depolarization of perylene in muscle membranes from mice with muscular dystrophy.

The microviscosity of erythrocyte membranes and muscle microsomes from age matched 6-week old control mice REJ 129 Dy/Dy, and mice with muscular dystrophy REJ 129 DY/DY has been estimated by measuring the fluorescence depolarization of perylene. There was no difference between the erythrocyte membranes. The muscle microsomes from dystrophic animals had about 20% lower values than the controls. The temperature dependence indicated that a transition occurs in both sets of muscle microsomes, but the transition temperature was lower in the dystrophic microsomes. Cholesterol, phospholipid and triglyceride analyses of the membranes showed no difference between the erythrocyte membranes. The largest difference in the muscle microsomes was a two-fold increase in cholesterol level found in the dystrophic microsomes. No simple correlation could be made between the lipid analysis and the microviscosity measurements. Since the change in microviscosity is found in membranes isolated from the tissue primarily affected by the dy gene, we suggest that the change in microviscosity may be important in the development of the disease.

Animals↗

On the association of tyrocidine with acetylcholinesterase.

In studies of several polypeptide antibiotics with a high affinity for a variety of biological membranes, tyrocidine was found to bind specifically to acetylcholinesterase, an enzyme localized in excitable membranes. Several other polypeptides tested were not bound. Tyrocidine reversibly inhibits acetylcholinesterase formed by homogeneous protein, but seems to have no effect on the activity of the enzyme bound to the eel electroplax membrane. This inhibition is accompanied by a reversible association of the soluble enzyme in to ordered and rapidly sedimenting aggregates of large molecular weight. Electron micrographs of acetylcholinesterase are shown which are consistent with the chemical evidence of the existence of four subunits.

Animals↗

Compared effects of dithiotreitol on the interaction of an affinity-labeling reagent with acetylcholinesterase and the excitable membrane of the electroplax.

p-(trimethyl ammonium) benzene diazonium difluoroborate (TDF), an affinity-labeling reagent of the acetylcholine receptor site(s), which in the normal cell acts as an irreversible inhibitor becomes a reversible activator after in vivo exposure of the electroplax to dithiothreitol (DTT), a disulfide bond reducing agent. After in vitro exposure of acetylcholinesterase to DTT, TDF becomes a reversible competitive inhibitor of the enzyme, using indophenyl acetate as the substrate. Both acetylcholinesterase and the macromolecular receptor of acetylcholine thus contain disulfide bonds. Additional experiments with DTT suggest that there might exist several different classes of receptor sites for cholinergic agents in the excitable membrane of the electroplax.

Animals↗

Electrical phenomena associated with the activity of the membrane-bound acetylcholinesterase.

Treatment of isolated electroplax with physiological solutions supplemented with either 1 molar sodium chloride, 2 molar urea, or 2 molar sucrose renders the cell insensitive to carbamylcholine, phenyltrimethylammonium, or decamethonium even at high concentrations. The treated cells have a residual resting potential of -20 +/- 10 millivolts (negative inside) and are depolarized by acetylcholine at concentrations larger than 10(-3) mole per liter. This response is not affected by d-tubocurarine but is blocked by physostigmine, diisopropylphosphorofluoridate, or strong buffers and thus depends on the catalytic activity of the membrane-bound acetylcholinesterase.

Acetylcholinesterase↗