Mansour Mostafa A, AboulMagd Asmaa M, Abdel-Rahman Hamdy M
Pharmaceutical Chemistry Department, Faculty of Pharmacy, Nahda University (NUB) Beni-Suef Egypt
Medicinal Chemistry Department, Faculty of Pharmacy, Assiut University Assiut 71526 Egypt.
RSC Adv. 2020 Sep 15;10(56):34033-34045. doi: 10.1039/d0ra06424f. eCollection 2020 Sep 10.
The 2019 coronavirus (COVID-19) pandemic is spreading worldwide, with a dramatic increase in death without any effective therapeutic treatment available up to now. We previously reported quinazoline-trihydroxyphenyl Schiff base conjugates as phosphodiesterase 4B (PDE 4B) inhibitors (an enzyme that plays an essential role in the early stages of COVID-19 pneumonia). Additionally, the structural similarity between these conjugates and identified anti-severe acute respiratory syndrome (SARS)-coronavirus (CoV)-2 flavonoids inspired us to study their possible binding interactions with essential SARS-CoV-2 proteins. Thus, this study provides an insight into the potential bindings between quinazoline-Schiff base conjugates and SARS-CoV-2 proteins, including spike glycoprotein (SGp), main protease (M) and RNA-dependent RNA polymerase (RdRp), to offer an opportunity to find an effective therapy. Besides this, based on the role that COVID-19 plays in iron dysmetabolism, the conjugate trihydroxyphenyl moiety should be reconsidered as an iron chelator. Moreover, molecular dynamics simulations of quinazoline derivative Ic bound to the mentioned targets were carried out. Finally, ADMET calculations were performed for the studied compounds to predict their pharmacokinetic profiles.
2019冠状病毒病(COVID-19)大流行正在全球蔓延,由于目前尚无有效的治疗方法,死亡人数急剧增加。我们之前报道过喹唑啉-三羟基苯基席夫碱共轭物作为磷酸二酯酶4B(PDE 4B)抑制剂(一种在COVID-19肺炎早期阶段起关键作用的酶)。此外,这些共轭物与已鉴定的抗严重急性呼吸综合征(SARS)冠状病毒(CoV)-2类黄酮之间的结构相似性促使我们研究它们与SARS-CoV-2必需蛋白可能的结合相互作用。因此,本研究深入探讨了喹唑啉-席夫碱共轭物与SARS-CoV-2蛋白之间的潜在结合,这些蛋白包括刺突糖蛋白(SGp)、主要蛋白酶(M)和RNA依赖性RNA聚合酶(RdRp),从而为寻找有效治疗方法提供了机会。除此之外,基于COVID-19在铁代谢紊乱中所起的作用,共轭物的三羟基苯基部分应重新被视为一种铁螯合剂。此外,还对与上述靶点结合的喹唑啉衍生物Ic进行了分子动力学模拟。最后,对所研究的化合物进行了ADMET计算,以预测它们的药代动力学特征。