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M I Kabachnik

Publications and source records attributed to M I Kabachnik.

At least 19 recordsLinked to original sources

[Mechanism of action of 2-aryloxy-2-thio-1,3,2-oxazaphosphorinane pesticides].

The interaction of 2-aryloxy-2-thio-1,3,2-oxazaphosphorinanes exhibiting nematocide, insecticide/acaricide, and synergetic activities with monoamine oxidases and the interaction of the corresponding oxones, 2-aryloxy-2-oxo-1,3,2-oxazaphosphorinanes, with various cholinesterases, carboxyl esterases, and monoamine oxidases were studied. We showed that the thioderivatives inhibited monoamine oxidases, whereas oxones, which are, as a rule, weak cholinesterase inhibitors, strongly inhibited carboxyl esterases of the American cockroach and were transformed with monoamine oxidases into the strong cholinesterase inhibitors, acyclic phosphamidates. This allowed us to explain the low toxicity of the thioderivatives, the high toxicity of the oxoderivatives, and the great difference in toxicities of thio- and oxocompounds in the 1,3,2-oxazaphosphorinane series. The capacity of thioderivatives to inhibit monoamine oxidases and of oxoderivatives and their further activation products to inhibit carboxyl esterases, i.e., both enzymes responsible for pyrethroid detoxication in insects, explains the synergetic activity of the 1,3,2-oxazaphosphorinane series.

Animals

[Mechanism of action of thiophosphoroorganic insectoacaricides containing fragments of N-carbaalkoxylated amino acids].

Toxicity and insecticide and acaricide activity of compounds (1) is significantly dependent on the nature of amino acid (n = 1 or 2) and substituents in carbamate and amino acid ester groups (R and R1). Investigation of interaction of these compounds with mammalian carboxylesterases, and the appropriate "oxones" with choline esterases of mammal and arthropoda revealed that the lower toxicity and activity of beta-alanine derivatives (n = 2) compared with glycine derivatives (n = 1) are due to the more rapid hydrolysis by carboxylesterases (detoxication). The low toxicity of dithiophosphonate with R = Me, R1 = Bu(i), n = 1 and the high toxicity of its isomer with R = Bu(i), R1 = Me, n = 1 are associated with the more rapid oxidative cleavage of isobutyl group in comparison with the other substituents, because detoxication occurs by the cleavage of R1 and activation--by that of R respectively.

Acari

[Anticholinesterase activity of certain carboranyl-containing thio- and selenoesters of pentavalent phosphorus acids].

Anticholinesterase activity of carboranyl containing thio- and selenoesters of pentavalent phosphorus acids has been studied. Insertion of the carboranyl substituents in the thioester group of phosphororganic compounds was found to increase the anticholinesterase activity as compared with the thioalkyl analogues. The compounds with B-carboranyl group are less active inhibitors of cholinesterase than their isomers with C-carboranyl group.

Acetylcholinesterase

[The mechanism of anticholinesterase action of acetylene organophosphorus inhibitors].

Introduction of the triple bond in the leaving group of the organophosphorus inhibitor molecule gives a sharp raise of the inhibitor activity but does not change principal characteristics of the cholinesterase inhibition mechanism. The reactivation experiments suggest that inactivation of cholinesterases by these compounds occurs due to phosphorylating of the serine hydroxyl by the corresponding phosphoric acid. A close similarity was shown between acetylenic and saturated organophosphorus inhibitors in altering ka upon change of pH and tetraalkylammonium ions action. It is demonstrated that S-alkynyl esters of thioacetic acid are slowly hydrolyzed by acetylcholinesterase and cholinesterase without irreversible inhibition of the enzymes.

Acetylene