Reactivation of phosphorylated cholinesterases in vitro and protecting effects in vivo of some pyridinium and quinolinium oximes.
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The rate of constant for hydrolysis of a series of 4-substituted aniline mustards Ar-X-pC6H4-N(CH2CH2Cl)2, where Ar is 4-anilinoquinolinium and X = O, CH2, CONH and CO, have been measured in water and 0.02 M imidazole buffer at 37 degrees C and in 50% aqueous acetone at 66 degrees C. The equilibrium binding constants of the compounds and their hydrolysis products to nucleic acids of differing base composition have been determined at varying ionic strengths, and the results are consistent with the compounds binding as expected in the DNA minor groove. The alkylating reactivity of the mustards towards these nucleic acids has been measured in water at 37 degrees C and in 0.01 M HEPES buffer over a range of temperatures from 25 degrees C to 60 degrees C. Evaluation of the thermodynamic parameters for these kinetic and equilibrium studies suggests that the interaction with nucleic acids is via an internal SN2 mechanism involving an aziridinium ion.
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The addition of isocyanides to pyridinium salts is studied. The process takes place efficiently when a carboxamido group is present in the 3 position of the pyridine ring. The outcome of the reaction involves the stabilization of the nitrilium intermediate by the amide, which suffers a mild dehydration, leading regioselectively to beta-cyano-gamma-carbamoyl-1,4-dihydropyridines. In this way, a variety of nicotinamide derivatives were carbamoylated. Extension to quinolinium, isoquinolinium, and N-acylpyridinium salts is also reported. [reaction: see text]
Some heterocyclic cations (1-methylacridinium, 1-methyl-2-hydroxyiminomethylpyridinium and 1-methyl-3-methoxy-pyridinium) cause acceleration of hydrolysis of alkyl acetates (methyl, ethyl or n-propyl acetate) by acetylcholinesterase (acetylcholine acetylhydrolase EC 3.1.1.7) (Barnett, P. and Rosenberry, T.L. (1977) J. Biol. Chem. 252, 7200-7206). In this study, it is shown that (a) other mono- and bisquaternary ligands of pyridinium, quinolinium and benzoquinolinium series accelerate methyl-, ethyl- and n-propyl-acetate hydrolysis by acetylcholinesterase, (b) these ligands generally accelerate methyl-, and ethyl- and n-propyl-acetate, -propionate and -butyrate, 2-methoxyethyl- and furfuryl-acetate, and ethylene-glycol diacetate hydrolysis by butyrylcholinesterase (acylcholine acylhydrolase, EC 3.1.1.8). At the present time, the ability to accelerate enzymatic hydrolysis of neutral substrates appears to be restricted to some heterocyclic quaternary ammonium compounds. Acceleration which occurs at physiological ionic strength (T/2 = 0.155) involves ternary enzyme-substrate-ligand complex formation and interaction of ligands with the catalytic anionic subsite. It concerns the step leading to the enzyme-substrate complex formation and/or the acylation step of enzymes. Kinetic behaviour analogy of acetylcholinesterase and butyrylcholin-esterase in the presence of the same ligands suggests that an identical acceleration mechanism arises for both enzymes.
Soman poisoning presents a problem in terms of its detailed pathophysiology and its detoxification mechanism(s). The present study was designed to evaluate the role of carboxylesterases (CaE) and cholinesterase (ChE) in the distribution and detoxification of soman in vivo. Mice were injected (i.v.) with 0.06-1.0 LD50 of [3H]-soman, 60 min following pretreatment with either 2-O-cresyl-4H-1:2:3 benzodioxa-phosphorine-2-oxide (CBDP), which blocks CaE or 7-(methylethoxyphosphinyloxy)-1-methyl quinolinium iodide (MEPQ), which selectively inhibits intravascular ChE. One hour after [3']-soman administration animals were sacrificed and whole body autoradiography was performed. High concentrations of [3H]-soman were found in lung and kidney in control mice, and low concentrations were found in central nervous system. Pretreatment with CBDP caused a 93% decrease in radioactive labelling in the lung, and a minor decrease in overall labelling, whereas pretreatment with MEPQ did not change the distribution pattern of [3H]-soman. It is concluded that lung is a major target organ for soman detoxification and that it exerts this effect by means of enzymatic reaction with soman through the abundant amounts of CaE which are present in the lung. Intravascular ChE has little (if any) effect on the distribution and detoxification of soman in vivo.
To substantiate reported data and improve the properties of anticholinesterase drugs in blood-brain barrier (B-BB) research, 7-(methylethoxyphosphinyloxy) 1-methyl-quinolinium iodide (MEPQ) was prepared and evaluated as an inhibitor of both acetyl- and butyrylcholinesterase (AChE and BuChE, respectively) from various sources. The second-order rate constants for the inhibition of cholinesterase from eel, mice brain and horse serum at 25 degrees were found to be 5.3 X 10(8), 1.3 X 10(8) and 5.4 X 10(7) M-1 min-1 respectively. The inhibited enzyme could be reactivated by 1-methyl-2-hydroxy iminomethylpyridinium iodide (2-PAM). The two enantiomers of the racemic mixture MEPQ inhibited AChE at similar rates. Low concentrations of AChE could be determined by the residual enzyme activity and by fluorescence measurements of the leaving group, thus suggesting the application of MEPQ as a sensitive titrant of cholinesterase, as well as a potential tool in studying B-BB permeability changes.
The ligand binding and kinetic behaviour of butyrylcholinesterase (EC 3.1.1.8, acylcholine acylhydrolase) from human plasma was studied at 35 degrees C under high hydrostatic pressure. The binding of phenyltrimethylammonium was studied by affinity electrophoresis at various pressures ranging from 10(-3) to 2 kbar. The kinetics of enzyme carbamylation with N-methyl(7-dimethylcarbamoxy)quinolinium iodide was studied in single-turnover conditions up to 1.2 kbar using a high-pressure stopped-flow fluorimeter. Experiments were carried out in different media: 1 mM Tris-HCl (pH 8) with water, water containing 0.1 M lithium chloride and deuterium oxide as solvents. The volume changes (delta V and delta V++) associated with each process were determined from the pressure-dependence of the binding and kinetic constants. Kinetic data show that the binding of substrate to the enzyme leads to a pressure-sensitive enzyme conformational state which cannot accomplish the catalytic act. The pressure-induced inhibitory effect is highly cooperative; it depends on both the nature (charged or neutral) and the concentration of the substrate. Also, large solvent effects indicate that enzyme sensitivity to pressure depends on the solvent structure. This findings suggests that the substrate-dependent pressure effect is modulated by the solvation state of the enzyme.
The fluorescence intensity of 6-methoxy-N-(3-sulfopropyl)quinolinium (SPQ) in an N-2-hydroxyethylpiperazine-N'-2-ethanesulfonic acid (HEPES) 2-(N-morpholino)ethanesulfonic acid (MES)-Tris(hydroxymethyl)aminomethane buffer, pH 7.0, decreased as a function of Cl- concentration and/or gluconate concentration, as expected. Contrary to expectation, however, the fluorescence intensity progressively increased as the pH decreased, independently of the presence of gluconate. Consequently, the modulation of SPQ fluorescence by commonly used buffers was investigated as a function of pH. Titration curves demonstrated SPQ quenching and yielded pK values characteristic of each buffer. from here, pH-independent Stern-Volmer constants, KQbase, were calculated for each of the morpholine derivatives, MES and 3-(N-morpholino)-2-hydroxypropanesulfonic acid. In contrast, HEPES and piperazine-N,N'-bis(2-ethanesulfonic acid), which are piperazine derivatives, exhibited an additional pH-independent "molecular" quenching constant KmQ throughout the pH range 3-10. To study chloride fluxes, therefore, what counts is the apparent Cl-Stern-Volmer constant KappCl, which is a function of both pH and buffer composition. Equations describing these relationships are presented. In conclusion, unless both pH and the buffer composition are taken into account, SPQ is unsuitable for studying the concomitant transmembrane fluxes of Cl- and H+.
A variety of pyridinium, quinolinium, and benzoquinolinium cations have been investigated as potential substrates for milk xanthine oxidase at pH 9.9 and (or) pH 10.6. Steady-state kinetic parameters (kc, Km and (or) kc/Km) have been evaluated for all substrates which are enzymically oxidized. Simple N-alkyl pyridinium cations are neither substrates nor inhibitors, although N-aryl pyridinium cations are slowly oxidized to the 4-pyridinones. N-Methylpyridinium cations bearing 3-CONH2, 3-CONHCH3, 3-COCH3, 3-CO2- or 3-CN substituents are readily oxidized at C-6 and this suggests an important hydrogen-bonding interaction between an enzyme donor and the C-3 carbonyl substituent. A variety of N-methylquinolinium cations bearing C-6 substituents are enzymically oxidized at C-2. Analogous substituent effects on kc/Km for these 6-substituted 1-methylquinolinium cations and the corresponding 1-(substituted phenyl)-pyridinium cations is suggestive of the relative productive binding orientations of these two classes of substrate in the active site. N-Methylbenzoquinolinium and 1,10-phenanthrolinium cations are the best cationic substrates found to date, and suggest a relatively large active-site region for the reducing substrate, and important hydrophobic interactions between enzyme and substrate. The overall enzymic specificity observed for these cationic substrates allows a mapping of the general features of the reducing substrate binding site of this enzyme.
Cyclic voltammetry data were obtained for 12 salts of quinolines, one pyridine, and one open-chain imine which possess varying degrees of anticancer activity. The structural features include sidechain bis(2-methylthio)vinyl, 2-methylthio-2-aminovinyl, dithioacetic acid, 2-quinolylvinyl, 2-styrylvinyl, and guanidine sulfide functionalities. Reduction potentials ranged from -0.43 to -1.08 V. The electrochemical results are correlated with structure. A possible mechanism of anticancer action is addressed.
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A pair of water-soluble molecular tweezers designed using the computer program CAVEAT were prepared and their binding to an N-ethylquinolinium cation was demonstrated by 1H NMR spectroscopy.
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It has been shown in rat experiments that decamethoxin increases the level of acid glycosaminoglycans, glyco- and mucoproteins, whereas decamin lowers the content of total glycoproteids at the expense of changes in the content of glyco- and mucoproteins. Levorin has been demonstrated to bring down the content of total glycoproteins and oxyproline in the liver.
G-protein-coupled receptors transduce their signals through G-protein subunits which in turn are subject to modulation by other intracellular proteins such as the regulators of G-protein signaling (RGS) proteins. We have developed a cell-free, homogeneous (mix and read format), time-resolved fluorescence resonance energy transfer (TR-FRET) assay to monitor heterotrimeric G-protein subunit interactions and the interaction of the G alpha subunit with RGS4. The assay uses a FRET pair consisting of a terbium cryptate chelate donor spectrally matched to an Alexa546 fluor acceptor, each of which is conjugated to separate protein binding partners, these being G alpha(i1):beta4gamma2 or G alpha(i1):RGS4. Under conditions favoring specific binding between labeled partners, high-affinity interactions were observed as a rapid increase (>fivefold) in the FRET signal. The specificity of these interactions was demonstrated using denaturing or competitive conditions which caused significant reductions in fluorescence (50-85%) indicating that labeled proteins were no longer in close proximity. We also report differential binding effects as a result of altered activation state of the G alpha(i1) protein. This assay confirms that interactions between G-protein subunits and RGS4 can be measured using TR-FRET in a cell- and receptor-free environment.
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