Kundu Sangeeta, Roy Debjani
Bioinformatics Centre, Bose Institute, Acharya J. C. Boses Centenary Building, P-1/12 C.I.T. Scheme-VIIM, Kolkata--700054, India.
J Biomol Struct Dyn. 2007 Aug;25(1):25-33. doi: 10.1080/07391102.2007.10507152.
Glyceraldehyde-3-phosphate dehydrogenase (GAPDH) of the pathogenic protozoa Entamoeba histolytica (Eh) is a major glycolytic enzyme and an attractive drug target since this parasite lacks a functional citric acid cycle and is dependent solely on glycolysis for its energy requirements. The three-dimensional structure of dimeric EhGAPDH in complex with cofactor NAD(+) has been generated by homology modeling based on the crystal structure of human liver GAPDH. Our refined model indicates the presence of a parasite specific disulfide bond between two cysteine residues of adjacent monomers in the EhGAPDH dimer, which may be an important target for future drug design. Flexible docking with the substrate glyceraldehyde-3-phosphate (G3P) shows that Cys151, His178, Thr210, and Arg233 are important residues in G3P binding. The inorganic phosphate-binding site of EhGAPDH has been determined by docking study. The binding mode of a natural GAPDH inhibitor, chalepin to EhGAPDH has also been predicted. In search for a better inhibitor for EhGADPH, in silico modification of chalepin has been carried out to form an additional specific polar interaction with Asp194 of EhGAPDH whose equivalent is Leu195 in human GAPDH. In the absence of a crystal structure, our study provides an early insight into the structure of major drug target EhGAPDH, thus, facilitating the inhibitor design.
致病性原生动物溶组织内阿米巴(Eh)的甘油醛-3-磷酸脱氢酶(GAPDH)是一种主要的糖酵解酶,也是一个有吸引力的药物靶点,因为这种寄生虫缺乏功能性的柠檬酸循环,其能量需求完全依赖糖酵解。基于人肝脏GAPDH的晶体结构,通过同源建模生成了与辅因子NAD(+)结合的二聚体EhGAPDH的三维结构。我们优化后的模型表明,在EhGAPDH二聚体中相邻单体的两个半胱氨酸残基之间存在一个寄生虫特异性二硫键,这可能是未来药物设计的一个重要靶点。与底物甘油醛-3-磷酸(G3P)的柔性对接表明,Cys151、His178、Thr210和Arg233是G3P结合中的重要残基。通过对接研究确定了EhGAPDH的无机磷酸结合位点。还预测了天然GAPDH抑制剂chalepin与EhGAPDH的结合模式。为了寻找更好的EhGADPH抑制剂,对chalepin进行了计算机模拟修饰,以与EhGAPDH的Asp194形成额外的特异性极性相互作用,其在人GAPDH中的对应物是Leu195。在缺乏晶体结构的情况下,我们的研究为主要药物靶点EhGAPDH的结构提供了早期见解,从而有助于抑制剂设计。