Computational Biochemistry Research Laboratory, Department of Biochemistry, Dow Medical College, Dow University of Health Sciences, Karachi, Pakistan.
Department of Pathology, Dow Medical College, Dow University of Health Sciences, Karachi, Pakistan.
Pak J Pharm Sci. 2024 Mar;37(2):275-289.
The capsule is a major virulence factor for Streptococcus pneumoniae which causes global morbidity and mortality. It is already known that there are few conserved genes in the capsular biosynthesis pathway, which are common among all known serotypes, called CpsA, CpsB, CpsC and CpsD. Inhibiting capsular synthesis can render S. pneumoniae defenseless and vulnerable to phagocytosis. The Inhibitory potential of active Zingiber officinale compounds was investigated against the 3D (3-dimensional) structural products of Cps genes using in silico techniques. A 3D compound repository was created and screened for drug-likeness and the qualified compounds were used for molecular docking and dynamic simulation-based experiments using gallic acid for outcome comparison. Cavity-based docking revealed five different cavities in the CpsA, CpsB and CpsD proteins, with gallic acid and selected compounds of Zingiber in a binding affinity range of -6.8 to -8.8 kcal/mol. Gingerenone A, gingerenone B, isogingerenone B and gingerenone C showed the highest binding affinities for CpsA, CpsB and CpsD, respectively. Through the Molegro Virtual Docker re-docking strategy, the highest binding energies (-126.5 kcal/mol) were computed for CpsB with gingerenone A and CpsD with gingerenone B. These findings suggest that gingerenone A, B and C are potential inhibitors of S. pneumoniae-conserved capsule-synthesizing proteins.
胶囊是肺炎链球菌的主要毒力因子,导致了全球的发病率和死亡率。已知荚膜生物合成途径中几乎没有保守基因,这些基因在所有已知血清型中都很常见,称为 CpsA、CpsB、CpsC 和 CpsD。抑制荚膜合成可以使肺炎链球菌无防御能力,容易被吞噬。使用计算机技术研究了活性姜黄素化合物对 Cps 基因的 3D(三维)结构产物的抑制潜力。创建了一个 3D 化合物库,用于筛选药物相似性,并用没食子酸进行分子对接和基于动态模拟的实验,以比较结果。基于腔的对接显示 CpsA、CpsB 和 CpsD 蛋白中有五个不同的腔,没食子酸和姜黄素的选定化合物的结合亲和力范围为-6.8 到-8.8 kcal/mol。姜烯酮 A、姜烯酮 B、异姜烯酮 B 和姜烯酮 C 分别对 CpsA、CpsB 和 CpsD 表现出最高的结合亲和力。通过 Molegro Virtual Docker 重新对接策略,计算出 CpsB 与姜烯酮 A 和 CpsD 与姜烯酮 B 的最高结合能(-126.5 kcal/mol)。这些发现表明,姜烯酮 A、B 和 C 是肺炎链球菌保守荚膜合成蛋白的潜在抑制剂。