Department of Biochemistry, University College of Science, Shankar, Abdul Wali Khan University Mardan, Mardan 23200, Pakistan.
J Mol Graph Model. 2013 Mar;40:40-7. doi: 10.1016/j.jmgm.2012.11.010. Epub 2012 Dec 20.
Plasmodium falciparum causes the most fatal form of malaria and accounts for over 1 million deaths annually, yet currently used drug therapies are compromised by resistance. The malaria parasite cannot salvage pyrimidines and relies on de novo biosynthesis for survival. The enzyme dihydrooratate dehydrogenase (DHODH), a mitochondrial flavoenzyme, catalyzes the rate-limiting step of this pathway and is therefore an attractive anti-malarial chemotherapeutic target. In an effort to design new and potential anti-malarials, structure-based pharmacophore mapping, molecular docking, binding energy calculations and binding affinity predictions were employed in a virtual screening strategy to design new and potent P. falciparum dihydrooratate dehydrogenase (PfDHODH) inhibitors. A structure-based pharmacophore model was generated which consist of important interactions as observed in co-crystal of PfDHODH enzyme. The developed model was used to retrieve molecules from ChemBridge database, a freely available commercial database. A total of 87 molecules mapped on the modeled pharmacophore from the database. The retrieved hits were further screened by docking simulation, binding energy calculations and biding affinity predictions using genetic optimization for ligand docking (GOLD) and MOE. Based on these results, finally 26 chemo-types molecules were predicted as new, potential and structurally diverse PfDHODH inhibitors.
疟原虫恶性疟原虫引起最致命的疟疾形式,每年导致超过 100 万人死亡,但目前使用的药物治疗方法受到耐药性的影响。疟原虫不能回收嘧啶,并依赖从头合成来生存。酶二氢乳清酸脱氢酶(DHODH)是一种线粒体黄素酶,催化该途径的限速步骤,因此是一种有吸引力的抗疟化学治疗靶点。为了设计新的潜在抗疟药物,我们采用基于结构的药效团映射、分子对接、结合能计算和结合亲和力预测等方法,在虚拟筛选策略中设计新的和有效的恶性疟原虫二氢乳清酸脱氢酶(PfDHODH)抑制剂。生成了一个基于结构的药效团模型,该模型包含了 PfDHODH 酶共晶中观察到的重要相互作用。该模型用于从 ChemBridge 数据库中检索分子,ChemBridge 数据库是一个免费的商业数据库。从数据库中总共检索到 87 个符合模型药效团的分子。使用遗传优化配体对接(GOLD)和 MOE 进行对接模拟、结合能计算和结合亲和力预测,进一步筛选检索到的命中物。根据这些结果,最终预测了 26 种化学型分子作为新的、潜在的和结构多样化的 PfDHODH 抑制剂。