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Details

Autor(en) / Beteiligte
Titel
New substituted pyrazolones and dipyrazolotriazines as promising tyrosyl-tRNA synthetase and peroxiredoxin-5 inhibitors: Design, synthesis, molecular docking and structure-activity relationship (SAR) analysis
Ist Teil von
  • Bioorganic chemistry, 2021-04, Vol.109, p.104704, Article 104704
Ort / Verlag
United States: Elsevier Inc
Erscheinungsjahr
2021
Link zum Volltext
Quelle
Alma/SFX Local Collection
Beschreibungen/Notizen
  • [Display omitted] •Synthesis, design and characterization of new substituted pyrazolones and dipyrazolotriazines analogues.•All compounds were in vitro screened as antimicrobial and ABTS scavenging inhibition.•SAR study revealed the importance of benzenesulfonamide moiety for enhancing activity.•Docking analysis of the potent analogues clearly support in vitro data.•Drug-like ability have been investigated. New substituted pyrazolone and dipyrazolotriazine derivatives have been synthesized, designed and well characterized as promising dual antimicrobial/antioxidant agents to overcome multidrug resistant bacteria (MDR), oxidative stress and their related diseases. Among all strains, S. aureus was found to be the most susceptible for all compounds except 10b and 12b. Out of the three investigated series, sulfonamide analogues 5a-c displayed excellent antibacterial activity with 5b (MIC = 7.61 μM) and 5a (MIC = 8.98 μM) displaying activity that exceeds the reference drug tetracycline (MIC = 11.77 μM). The same sulfonamide derivatives 5a-c demonstrates high ABTS scavenging capacity comparable to standard. Moreover, the structure-activity relationship (SAR) revealed that benzenesulfonamide is a crucial group for enhancing activity. Molecular docking studies of the potent analogues were performed by targeting the crystal structures of S. aureus tyrosyl-tRNA synthetase and human peroxiredoxin-5 enzymes and the obtained results supported well the in vitro data revealing stronger binding interactions. Pharmacokinetics prediction together with modeling outcomes suggests that our sulfonamide derivatives may serve as useful lead compounds for the treatment of infectious disease.
Sprache
Englisch
Identifikatoren
ISSN: 0045-2068
eISSN: 1090-2120
DOI: 10.1016/j.bioorg.2021.104704
Titel-ID: cdi_crossref_primary_10_1016_j_bioorg_2021_104704

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