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Chemical models for the chemical nature of endogenous digitalis.

The inability or the capacity to promote the phosphorylation of Na+/K(+)-transporting ATPase (Na/K-ATPase) from [32P]Pi is shown to differentiate between mechanistically digitalis-unlike and digitalis-like inhibitors of this enzyme known to be the receptor for all digitalis actions. A negative or positive response in the phosphorylation promotion assay introduced here appears thus to be suitable to diagnose the chemical species in the isolates of animal origin related to the putative endogenous digitalis. Various digitalis-congeneric C/D-cis steroids, progesterone-congeneric C/D-trans steroids and the Erythrophleum alkaloid cassaine promote the enzyme phosphorylation and show a similar pattern of discrimination between three Na/K-ATPase variants. Thus, their cyclopentanoperhydrophenanthrene or perhydrophenanthrene nuclei appear to serve as the minimal pharmacophoric lead structures for bimolecular recognition and to represent chemical models for the chemical nature of endogenous digitalis. Specifically, the hormonal C/D-trans steroids could provide the basic skeleton in endogenous digitalis biosynthesis.

Animals

Chemical models of oxidative phosphorylation.

Chemical models for coupling oxidation to phosphorylation are summarized and examined both from the standpoint of organic reaction mechanisms and with respect to their relevance to mitochondria and chloroplasts. In order to accelerate the progress of our research in bioenergetics, it is suggested to focus at least as much attention on structural biochemistry as on phenomenological observations of energy-transducing membranes.

Binding Sites

Chemical models of epilepsy with some reference to their applicability in the development of anticonvulsants.

This paper reviews chemical models of epilepsy and their relevance in the identification and characterization of anticonvulsants. For each convulsant we discuss possible modes of administration, clinical type(s) of seizures induced, proposed mechanism(s) of epileptogenesis and, where available, responsiveness of the induced seizures to anticonvulsants. The following compounds are reviewed: pentylenetetrazol, bicuculline, penicillin, picrotoxin, beta-carbolines, 3-mercaptopropionic acid, hydrazides, allylglycine; the glycine antagonist strychnine; gamma-hydroxybutyrate; excitatory amino acids (glutamate, aspartate, N-methyl-D-aspartate, quisqualate, kainate, quinolinic acid); monosubstituted guanidino compounds, metals (alumina, cobalt, zinc, iron); neuropeptides (opioid peptides, corticotropin releasing factor, somatostatin, vasopressin); cholinergic agents (acetylcholine, acetylcholinesterase inhibitors, pilocarpine); tetanus toxin; flurothyl; folates; homocysteine and colchicine. Although there are a multitude of chemical models of epilepsy, only a limited number are applied in the routine screening of potential anticonvulsants. Some chemical models have a predictive value with regard to the clinical profile of efficacy of the tested anticonvulsants. Some chemical models may contribute to a better understanding of possible mechanisms of epileptogenesis.

Animals

Flavin-dependent substrate photo-oxidation as a chemical model of dehydrogenase action.

As a model of flavin-dependent biological dehydrogenation, flavin-sensitized photodehydrogenation and photodecarboxylation were studied by variation of substrate, flavin, pH and solvent. Evidence for the following rules is given. (1) When the reactive site of a photosubstrate is an alpha-carbon atom of the type CH-CO2-, decarboxylation is preferred over dehydrogenation, whereas the reverse is true for the neutral CH-CO2H. (2) Consequently these reactions do not exhibit a measurable isotope effect with C2H-CO2-, in contrast with the findings by Penzer, Radda, Taylor & Taylor [(1970) Vitam. Horm. (N.Y.) 28, 441--466], which could not be reproduced. When the substate does not contain a carboxylate group, isotope effects occur, in verification of previous reports, e.g. for benzyl alcohol C6H5-C2H20H. (3) The mechanism of flavin-sensitized substrate photodecarboxylation is assumed to consist in a primary carbanion fixation at the flavin nucleus (position 4a, 5 or 8) with concomitant liberation of CO2. This step is followed by rapid fragmentation of the adduct CH-Fl-red., provided that the substrate contains a functional and electron-donating group X, e.g. X = OH, OCH3 or NH2 (but not NH3+ !) in X CH-CO2-. (4) The minimal requirement for flavin-sensitized C-H dehydrogenation is the presence of a hydroxyl group. For example, methanol as substrate and solvent is dehydrogenated at pH sufficiently alkaline for detection of the presence of the active species CH3O-, whereas at more acidic pH substrate dehydrogenation is competing with flavin autophotolysis, which depends on the substituents in the flavin nucleus.

Carboxylic Acids

Limiting laws and counterion condensation in polyelectrolyte solutions. V. Further development of the chemical model.

Counterion binding to polyelectrolyte chains is formulated as a chemical reaction Mz (free) leads to Mz (bound). Expressions for the chemical potentials of free and bound counterions are set equal to obtain the reaction equilibrium. The results are equivalent to those in the previous paper of this series. An additional result obtained here is that a polyion holds its bound counterion layer with a strength on the order of 100 kcal/(mole cooperative unit). The method is then applied to the calculation of the polarizability along the chain due to the bound (condensed) counterions.

Electrolytes

Ischemic-like change produced in canine heart by atractyloside: a chemical model.

Experiments were conducted in two canine models. Intracoronary infusion of atractyloside resulted in physiological, biochemical, and ultrastructural changes similar to those seen with ischemia. The fact that atractyloside, a specific inhibitor of adenine nucleotide translocase produces this change in vivo suggests that this inhibition in the key disturbance that initiates the metabolic derangements seen with ischemia. This chemical model seems to provide unique opportunities to study the possible factors that may reverse adenine nucleotide translocase inhibition and thus possibly prevent cell injury.

Animals

Chemical models for possible nitrosamine artifact formation in environmental analysis.

Preliminary data concerning two different phenomena of potential importance to those studying the analysis and formation of environmental N-nitroso compounds are presented. First of all, we report that inorganic nitrite in the solid phase can serve as an effective nitrosating agent for solutions of amines in certain nonaqueous media. Secondly, we describe evidence suggesting that the appearance of nitrosamines as contaminants in deionized water (Cohen, 1977; Gough et al., 1977; Fiddler et al., 1977) might result at least partly from simple, acid-catalyzed nitrosation of the amine/ammonium functional groups on the anion exchange resins used in the demineralization process. Possible implications of both phenomena are discussed and potentially useful measures for their control are suggested.

Catalysis

[Kinetic mechano-chemical model of a muscle with a six-stage cross-bridge cycle].

A kinetic scheme of the mechano-chemical cycle of the cross-bridges and a mathematical model based on this scheme are proposed. The main assumptions accepted in the scheme are: the step of the inorganic phosphate release precedes the force-generating step of a cross-bridge; the rate-limiting step of the ATP hydrolysis is isomerization of the actomyosin-ADP complex. It is shown that the model well describes the mechanical and biochemical transients initiated by the temperature jump and flash photolysis of the caged compounds in skinned muscle fibres.

Actomyosin

The effects of N-hexyl-O-glucosyl sphingosine on normal cultured human fibroblasts: a chemical model for Gaucher's disease.

Normal human skin fibroblasts were grown in the presence of N-hexyl-O-glucosyl sphingosine (HGS), an inhibitor of aryl glucosidase and glucocerebrosidase. Tests of the cells with aryl glycosides showed that beta-glucosidase activity in the cells was drastically reduced while other enzyme activities (alpha-glucosidase, beta-galactosidase, and N-acetyl-beta-hexosaminidase) were normal or elevated. Exposure of cells to HGS for 28 days resulted in increased values for cell weight per plate, glucocerebroside concentration, and galactosyl-galactosylglucosyl ceramide concentration. The concentrations of total lipid, cholesterol, and protein were unchanged, as was the fatty acid distribution within the glycolipids. Chemically, the inhibitor-treated cells exhibited a model form of Gaucher's disease. Although many membranous cytoplasmic inclusions were induced by HGS, they were unlike the characteristic inclusions seen in individuals with the genetic disorder. Skin fibroblasts from a Gaucher patient showed no abnormalities in composition or appearance.

Cell Line

Studies of the mechanism of the periodic acid-Schiff histochemical reaction for glycogen using infrared spectroscopy and model chemical compounds.

It has been proposed in the literature that Schiffs reagent reacts with aldehydes to form one of the following types of compounds: alkylsulfonic acids, N-sulfinic acid derivatives, or Schiff bases. Model compounds whose structures are consistent with those proposed in the literature have been synthesized and subjected to infrared analysis. Also, actual products of Schiff reagent reactions with various aldehydes have been isolated and examined using infrared spectroscopy. Comparison of the spectra of the model compounds with those of Schiff-aldehyde reaction products yielded the following conclusions: 1. The reaction of simple organic aldehydes with Schiff's reagent produces an alkylsulfonate-type reaction product. 2. The reaction of periodate-oxidized glycogen with Schiff's reagent probably involves the formation of an alklsulfonate-type compound. 3. The product of the Schiff-aldehyde reaction exists as neither an N-sulfinic acid nor a Schiff base derivative of the fuchsin molecule.

Aldehydes