AI Article Synopsis

  • A series of novel 5-imino-4-thioxo-2-imidazolidinone derivatives were synthesized successfully using specific chemical reactions between N-arylcyanothioformamide and isocyanate derivatives, resulting in high yields and purity.
  • These derivatives, when treated with an acidic medium, transformed into 4-thioxoimidazolidin-2,5-dione derivatives, with their structures identified through various spectroscopic techniques, confirming their successful synthesis.
  • Notably, most of the synthesized compounds displayed significant anti-inflammatory activity, outperforming the reference drug celecoxib in inhibiting COX-1 and COX-2 enzymes, and their potential as anti-inflammatory agents was further analyzed through

Article Abstract

A series of 5-imino-4-thioxo-2-imidazolidinone derivatives with different substituents at N and N was synthesized with high yield and excellent purity by the reaction of different N-arylcyanothioformamide derivatives with isocyanate derivatives. Treatment 5-imino-4-thioxo-2-imidazolidinone derivatives with acidic medium afforded 4-thioxoimidazolidin-2,5-dione derivatives. The structures of the obtained products were established based on spectroscopic IR, H NMR, C NMR, H, H-COSY, HSQC and elemental analyses. The anti-inflammatory activity of the synthesized compounds through the carrageenan-paw edema model as well as in vitro COX-1 and COX-2 inhibition assay were evaluated where most of the synthesized compounds showed significant anti-inflammatory activity. Mostly, all of our synthesized compounds have greater activity more than celecoxib toward both cyclooxygenase enzymes. All of the tested compounds (except one compound) exhibited IC valves for COX-2 ranged from 0.001 × 10 to 0.827 × 10 µM while the reference drug has IC 40.0 × 10 µM. Furthermore, the analgesic activity of such compounds was also determined. Molecular modeling study was also conducted to rationalize the potential as anti-inflammatory agents of our synthesized compounds by predicting their binding modes, binding affinities and optimal orientation at the active site of the COX enzymes.

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Source
http://dx.doi.org/10.1016/j.bioorg.2019.03.075DOI Listing

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