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  2. Design, Synthesis, and Evaluation of β‑Lactamase Inhibitors as Potential Therapeutics for Antimicrobial Resistance

Design, Synthesis, and Evaluation of β‑Lactamase Inhibitors as Potential Therapeutics for Antimicrobial Resistance

  • ACS Omega. 2025 Dec 1;10(49):61032-61047. doi: 10.1021/acsomega.5c10798.
Sania Batool 1 Rabia Farid 2 Syed Sikander Azam 2 Abbas Hassan 1 3
Affiliations

Affiliations

  • 1 Department of Chemistry, Quaid-i-Azam University, Islamabad., 45320 Islamabad, Pakistan.
  • 2 Computational Biology Lab, National Center for Bioinformatics, Quaid-i-Azam University, Islamabad., 45320 Islamabad, Pakistan.
  • 3 Department of Chemistry, College of Science, United Arab Emirates University, Al Ain 1551, Abu Dhabi, United Arab Emirates.
Abstract

Antimicrobial resistance is a global health threat affecting millions of people worldwide. The situation has been exacerbated by the emergence of β-lactamase Enzymes that can hydrolyze the β-lactam rings within the Antibiotics. This makes Antibiotics incapable of preventing Bacterial infections. The abuse of β-lactam Antibiotics is instigating Bacterial resistance, thus causing the Antibiotics to fail. There is a need to develop newer drugs that can tackle these β-lactamases and overcome Bacterial infections. Thienopyrimidines have exhibited diverse biological activities as promising potent Antibacterial agents. We synthesized a wide array of substituted thienopyrimidines using a highly divergent approach to introduce different groups involving Suzuki and Sonogashira coupling reactions, aromatic nucleophilic substitution, and alkylation reactions. Novel thienopyrimidines were tested against Pseudomonas aeruginosa and Staphylococcus aureus, showed inhibitory activity, and were further tested for β-lactamase activity. In-depth investigation revealed that 4-(2-(tert-butyl)-thieno-[2,3-d]-pyrimidin-4-yl)-morpholine demonstrated exceptional results compared to cefixime (control). To evaluate the compound's potency in combination therapy, synergistic effects were observed when imipenem was administered alongside our potent compound, resulting in a significantly enhanced minimum inhibitory effect against clinical isolates of S. aureus. The findings from this study hold substantial pharmacological significance in addressing the growing threat of Bacterial resistance, particularly associated with β-lactamase Enzymes.

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