Abstract <p><b>Objective:</b> A library of ten derivatives of 3-benzyl-<i>N</i>1-substituted quinoxalin-2-ones was designed and investigated for targeting SARS-CoV-2. <b>Methods:</b> The target compounds were synthesized as <i>N</i>1-substituted quinoxalines and quinoxaline/triazole hybrids via a click reaction. The anti-SARS-CoV-2 activity of these compounds was evaluated via spike protein and papain-like protease (PLpro) inhibition assays. <b>Results and Discussion:</b> The inhibition assays revealed a remarkable dual inhibitory activity for most compounds, ranging from 76.2 to 86.9%. Compounds (<b>IIIb</b>) and (<b>IIIc</b>) were identified as the most potent inhibitors based on enzyme kinetics studies. They exhibited a mixed inhibition type against both the PLpro enzyme and the spike protein. The most effective compound, (<b>IIIc</b>), demonstrated the lowest <i>K</i><sub><i>i</i></sub> competitive and <i>K</i><sub><i>i</i></sub> noncompetitive values for PLpro (0.23 ± 3 × 10<sup>–4</sup> and 0.57 ± 1 × 10<sup>–3</sup> µM) and spike protein (0.83 ± 1 × 10<sup>–4</sup> and 1.03 ± 2 × 10<sup>–4</sup> µM), respectively. These results indicate that compound (<b>IIIb</b>) acts as a competitive inhibitor (lower <i>K</i><sub><i>i</i></sub> value). Interestingly, molecular docking studies of both enzymes’ active sites revealed a significant binding affinity of our compounds, supporting the biological results. <i>In silico</i> prediction studies indicated that most of the candidates comply with Lipinski’s and Veber’s rules, demonstrating acceptable drug-likeness parameters and no predicted CNS side effects. <b>Conclusions:</b> The investigated compounds exhibited favorable inhibitory activity against SARS-CoV-2 and strong binding interactions, suggesting their potential as therapeutic candidates against COVID-19.</p>

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Investigation of Quinoxaline-1,2,3-triazole Derivatives for Targeting SARS-CoV-2 via RBD Binding and PLpro Inhibition

  • Amr Negm,
  • Ahmad R. Rabee,
  • Hamida Abdel-Hamid,
  • Samah A. Nasr,
  • Doaa A. Ghareeb,
  • Rabab S. Ibrahim,
  • Mohammed B. Hawsawi,
  • Ahmed M. Abdelmoneim,
  • Magda M. F. Ismail,
  • Mohammed Salah Ayoup

摘要

Abstract

Objective: A library of ten derivatives of 3-benzyl-N1-substituted quinoxalin-2-ones was designed and investigated for targeting SARS-CoV-2. Methods: The target compounds were synthesized as N1-substituted quinoxalines and quinoxaline/triazole hybrids via a click reaction. The anti-SARS-CoV-2 activity of these compounds was evaluated via spike protein and papain-like protease (PLpro) inhibition assays. Results and Discussion: The inhibition assays revealed a remarkable dual inhibitory activity for most compounds, ranging from 76.2 to 86.9%. Compounds (IIIb) and (IIIc) were identified as the most potent inhibitors based on enzyme kinetics studies. They exhibited a mixed inhibition type against both the PLpro enzyme and the spike protein. The most effective compound, (IIIc), demonstrated the lowest Ki competitive and Ki noncompetitive values for PLpro (0.23 ± 3 × 10–4 and 0.57 ± 1 × 10–3 µM) and spike protein (0.83 ± 1 × 10–4 and 1.03 ± 2 × 10–4 µM), respectively. These results indicate that compound (IIIb) acts as a competitive inhibitor (lower Ki value). Interestingly, molecular docking studies of both enzymes’ active sites revealed a significant binding affinity of our compounds, supporting the biological results. In silico prediction studies indicated that most of the candidates comply with Lipinski’s and Veber’s rules, demonstrating acceptable drug-likeness parameters and no predicted CNS side effects. Conclusions: The investigated compounds exhibited favorable inhibitory activity against SARS-CoV-2 and strong binding interactions, suggesting their potential as therapeutic candidates against COVID-19.