Sabbah Dima A, Zhong Haizhen A
College of Pharmacy, Al- Zaytoonah University of Jordan, P.O. Box 130, Amman 11733, Jordan.
DSC 362, Department of Chemistry, The University of Nebraska at Omaha, 6001 Dodge Street, Omaha, NE 68182, USA.
J Mol Graph Model. 2016 Jul;68:206-215. doi: 10.1016/j.jmgm.2016.07.005. Epub 2016 Jul 19.
β-secretase (BACE1) is an aspartyl protease that processes the β-amyloid peptide in the human brain in patients with Alzheimer's disease. There are two catalytic aspartates (ASP32 and ASP228) in the active domain of BACE1. Although it is believed that the net charge of the Asp dyad is -1, the exact protonation state still remains a matter of debate. We carried out molecular dynamic (MD) simulations for the four protonation states of BACE1 proteins. We applied Glide docking studies to 21 BACE1 inhibitors against the MD extracted conformations. The dynamic results infer that the protein/ligand complex remains stable during the entire simulation course for HD32D228 model. The results show that the hydrogen bonds between the inhibitor and the Asp dyad are maintained in the 10,000th ps snapshot of HD32D228 model. Our results also reveal the significant loop residues in maintaining the active binding conformation in the HD32D228 model. Molecular docking results show that the HD32D228 model provided the best enrichment factor score, suggesting that this model was able to recognize the most active compounds. Our observations provide an evidence for the preference of the anionic state (HD32D228) in BACE1 binding site and are in accord with reported computational data. The protonation state study would provide significant information to assign the correct protonation state for structure-based drug design and docking studies targeting the BACE1 proteins as a tactic to develop potential AD inhibitors.
β-分泌酶(BACE1)是一种天冬氨酸蛋白酶,在阿尔茨海默病患者的大脑中加工β-淀粉样肽。BACE1的活性结构域中有两个催化性天冬氨酸(ASP32和ASP228)。尽管人们认为天冬氨酸二聚体的净电荷为-1,但其确切的质子化状态仍存在争议。我们对BACE1蛋白的四种质子化状态进行了分子动力学(MD)模拟。我们将Glide对接研究应用于21种针对MD提取构象的BACE1抑制剂。动力学结果表明,对于HD32D228模型,蛋白质/配体复合物在整个模拟过程中保持稳定。结果表明,在HD32D228模型的第10000皮秒快照中,抑制剂与天冬氨酸二聚体之间的氢键得以维持。我们的结果还揭示了在HD32D228模型中维持活性结合构象的重要环残基。分子对接结果表明,HD32D228模型提供了最佳的富集因子评分,表明该模型能够识别最具活性的化合物。我们的观察结果为BACE1结合位点中阴离子状态(HD32D228)的偏好提供了证据,并且与已报道的计算数据一致。质子化状态研究将为基于结构的药物设计以及针对BACE1蛋白的对接研究提供重要信息,以此作为开发潜在AD抑制剂的策略来确定正确的质子化状态。