Hydrolysis of diethyl-p-nitrophenylphosphate and ethyl-p-nitrophenylethylphosphonate by human sera.
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Biomedical subjects
Publications and source records attributed to E Reiner.
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1. The second-order rate constants of inhibition, k(a), of acetylcholinesterase were measured at pH values between 5.5 and 10.5 for two esters of phosphorus acids and five esters of carbamic acids. Two of the carbamates and one of the phosphates contained a quaternary nitrogen group. 2. For the three positively charged compounds the k(a)-pH plots are bell-shaped, with a pH optimum between 7.5 and 9.0. The changes in k(a) above and below the optimum pH fit theoretical curves for the dissociation of groups on the protein of pK 6.2 and 10.25. 3. For the uncharged compounds, the k(a)-pH plot on the alkaline side is identical with the one obtained for charged inhibitors. On the acid side they do not fit such a curve and the k(a) for two of the carbamates is independent of pH changes between 5.5 and 8.0. 4. The first-order rate constants, k(+3), for spontaneous reactivation were measured at pH values between 5.0 and 11.0 for N-methylcarbamoylated, NN-dimethylcarbamoylated and di-(2-chloroeth)phosphorylated cholinesterase. For all three derivatives the k(+3)-pH plots are bell-shaped, with a pH optimum between 8.0 and 8.5. The changes in k(+3) above and below the optimum fit theoretical curves for the dissociation of groups of pK 6.9 and 9.8. 5. The relevance of these results to binding, acylation and deacylation of both inhibitors and substrates is discussed.
1. The kinetics of the interaction of erythrocyte cholinesterase with 1-naphthyl N-methylcarbamate, 2-isopropoxyphenyl N-methylcarbamate and phenyl N-methylcarbamate were studied. Rate constants for inhibition and rate constants for spontaneous reactivation were determined. The calculated rate constants for spontaneous reactivation agreed well with those obtained experimentally. 2. The degree of inhibition obtained after preincubation of enzyme and inhibitor was found to be independent of both the substrate concentration and the dilution of the inhibited enzyme. 3. The reaction between the enzyme and the inhibitor was consistent with carbamates being regarded as poor substrates of cholinesterases. There was no evidence for the formation of a reversible complex between the enzyme and the carbamate.
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1. Reactivation of erythrocyte cholinesterase inhibited by ethyl p-nitrophenyl ethylphosphonate (armine) was studied with NN'-dimethylenebis-(4-hydroxy-iminomethylpyridinium bromide) (C(2)-oxime), NN'-trimethylenebis-(4-hydroxy-iminomethylpyridinium bromide) (C(3)-oxime), NN'-tetramethylene-(4-hydroxy-iminomethylpyridinium bromide) (C(4)-oxime) and NN'-pentamethylenebis-(4-hydroxyiminomethylpyridinium bromide) (C(5)-oxime) as reactivators. The kinetics of reactivation were consistent with a reaction of the type: [Formula: see text] and bimolecular rate constants for reactivation were calculated from the corresponding differential equations. 2. Of the four oximes studied C(2)-oxime was least effective and the other three oximes were about equally effective reactivators. 3. Reactivation of armine-inhibited cholinesterase by C(3)-oxime was also studied in the presence of substrate. This reaction was first-order with respect to inhibited enzyme, and slower than in the absence of substrate.
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