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Novel Schiff base-bridged multi-component sulfonamide imidazole hybrids as potentially highly selective DNA-targeting membrane active repressors against methicillin-resistant Staphylococcus aureus

  • Yuanyuan Hu
  • , Guangxing Pan
  • , Zhixiong Yang
  • , Tiejun Li
  • , Juan Wang
  • , Mohammad Fawad Ansari
  • , Chunfang Hu
  • , Rammohan R. Yadav Bheemanaboina
  • , Yu Cheng
  • , Chenghe Zhou
  • , Jiaheng Zhang*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

A new type of Schiff base-bridged multi-component sulfonamide imidazole hybrids with antimicrobial potential was developed. Some target compounds showed significant antibacterial potency. Observably, butylene hybrids 4h exhibited remarkable inhibitory efficacy against clinical MRSA (MIC = 1 µg/mL), but had no significant toxic effect on normal mammalian cells (RAW 264.7). The highly active molecule 4h was revealed by molecular modeling study that it could insert into the base-pairs of DNA hexamer duplex and bind with the ASN-62 residue of human carbonic anhydrase isozyme II through hydrogen bonding. Furthermore, further preliminary antibacterial mechanism experiments confirmed that compound 4h could effectively interfere with MRSA membrane and insert into bacterial DNA isolated from clinical MRSA strains through non-covalent bonding to produce a supramolecular complex, thus exerting its strong antibacterial efficacy by impeding DNA replication. These findings strongly implied that the highly active hybrid 4h could be used as a potential DNA-targeting template for the development of valuable antimicrobial agent.

Original languageEnglish
Article number104575
JournalBioorganic Chemistry
Volume107
DOIs
StatePublished - Feb 2021
Externally publishedYes

Keywords

  • Antibacterial
  • DNA
  • Imidazole
  • MRSA
  • Schiff base
  • Sulfonamide

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