Ayoub Ahmed Taha, Elrefaiy Mohamed Ali, Arakawa Kenji
Medicinal Chemistry Department, Heliopolis University, 3 Cairo-Belbeis Desert Road, El-Nahda, Qism El-Salam, Cairo 11777, Egypt.
Center of X-ray Determination for Structure of Matter (CXDS), Zewail City of Science and Technology, 6th of October City, Giza 12588, Egypt.
ACS Omega. 2019 Feb 28;4(2):4461-4471. doi: 10.1021/acsomega.8b03470.
Lankacidin C, which is an antibiotic produced by the organism , shows considerable antitumor activity. The mechanism of its antitumor activity remained elusive for decades until it was recently shown to overstabilize microtubules by binding at the taxol binding site of tubulin, causing mitotic arrest followed by apoptosis. However, the exact binding mode of lankacidin C inside the tubulin binding pocket remains unknown, an issue that impedes proper structure-based design, modification, and optimization of the drug. Here, we have used computational methods to predict the most likely binding mode of lankacidin C to tubulin. We employed ensemble-based docking in different software packages, supplemented with molecular dynamics simulation and subsequent binding-energy prediction. The molecular dynamics simulations performed on lankacidin C were collectively 1.1 μs long. Also, a multiple-trajectory approach was performed to assess the stability of different potential binding modes. The identified binding mode could serve as an ideal starting point for structural modification and optimization of lankacidin C to enhance its affinity to the tubulin binding site and therefore improve its antitumor activity.
兰卡杀菌素C是由该生物体产生的一种抗生素,具有显著的抗肿瘤活性。几十年来,其抗肿瘤活性机制一直难以捉摸,直到最近发现它通过结合微管蛋白的紫杉醇结合位点使微管过度稳定,导致有丝分裂停滞,随后引发细胞凋亡。然而,兰卡杀菌素C在微管蛋白结合口袋内的确切结合模式仍然未知,这一问题阻碍了基于结构的药物合理设计、修饰和优化。在此,我们使用计算方法预测兰卡杀菌素C与微管蛋白最可能的结合模式。我们在不同软件包中采用基于系综的对接方法,并辅以分子动力学模拟和后续的结合能预测。对兰卡杀菌素C进行的分子动力学模拟总时长为1.1微秒。此外,还采用了多轨迹方法来评估不同潜在结合模式的稳定性。所确定的结合模式可作为兰卡杀菌素C结构修饰和优化的理想起点,以增强其对微管蛋白结合位点的亲和力,从而提高其抗肿瘤活性。