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Novel Insights into the Thioesterolytic Activity of N-Substituted Pyridinium-4-oximes
- Source :
- Molecules, Volume 25, Issue 10, Molecules, Vol 25, Iss 2385, p 2385 (2020)
- Publication Year :
- 2020
- Publisher :
- MDPI, 2020.
-
Abstract
- The pyridinium oximes are known esterolytic agents, usually classified in the literature as catalysts, which mimic the catalytic mode of hydrolases. Herein, we combined kinetic and computational studies of the pyridinium-4-oxime-mediated acetylthiocholine (AcSCh+) hydrolysis to provide novel insights into their potential catalytic activity. The N-methyl- and N-benzylpyridinium-4-oximes have been tested as oximolytic agents toward the AcSCh+, while the newly synthesized O-acetyl-N-methylpyridinium-4-oxime iodide was employed for studying the consecutive hydrolytic reaction. The relevance of the AcSCh+ hydrolysis as a competitive reaction to AcSCh+ oximolysis was also investigated. The reactions were independently studied spectrophotometrically and rate constants, koxime, kw and kOH, were evaluated over a convenient pH-range at I = 0.1 M and 25 &deg<br />C. The catalytic action of pyridinium-4-oximes comprises two successive stages, acetylation (oximolysis) and deacetylation stage (pyridinium-4-oxime-ester hydrolysis), the latter being crucial for understanding the whole catalytic cycle. The complete mechanism is presented by the free energy reaction profiles obtained with (CPCM)/M06&ndash<br />2X/6&ndash<br />311++G(2df,2pd)//(CPCM)/M06&ndash<br />31+G(d) computational model. The comparison of the observed rates of AcSCh+ oximolytic cleavage and both competitive AcSCh+ and consecutive pyridinium-4-oxime-ester hydrolytic cleavage revealed that the pyridinium-4-oximes cannot be classified as non-enzyme catalyst of the AcSCh+ hydrolysis but as the very effective esterolytic agents.
- Subjects :
- Reaction mechanism
Cholinesterase Reactivators
Iodide
Pharmaceutical Science
Pyridinium Compounds
acetylthiocholine
pyridinium-4-oxime-ester
reaction mechanisms
energy profiles
computations
010402 general chemistry
Cleavage (embryo)
01 natural sciences
Medicinal chemistry
Article
Catalysis
Analytical Chemistry
lcsh:QD241-441
chemistry.chemical_compound
Hydrolysis
Reaction rate constant
Computational Chemistry
lcsh:Organic chemistry
Drug Discovery
Oximes
Humans
Physical and Theoretical Chemistry
chemistry.chemical_classification
010405 organic chemistry
Organic Chemistry
0104 chemical sciences
Kinetics
Chemistry
chemistry
Catalytic cycle
Chemistry (miscellaneous)
Molecular Medicine
Pyridinium
Cholinesterase Inhibitors
energy profiles
Subjects
Details
- Language :
- English
- Database :
- OpenAIRE
- Journal :
- Molecules, Volume 25, Issue 10, Molecules, Vol 25, Iss 2385, p 2385 (2020)
- Accession number :
- edsair.doi.dedup.....f946129c40b80e623e6a0ef0aae1545d