Division of Mechanics, Research Center for Applied Sciences, Academia Sinica, 128 Academia Rd., Sec. 2, Nankang, Taipei 115, Taiwan.
Molecules. 2014 Jun 5;19(6):7415-28. doi: 10.3390/molecules19067415.
Type II topoisomerases (TOP2) are enzymes that resolve the topological problems during DNA replication and transcription by transiently cleaving both strands and forming a cleavage complex with the DNA. Several prominent anti-cancer agents inhibit TOP2 by stabilizing the cleavage complex and engendering permanent DNA breakage. To discriminate drug binding modes in TOP2-α and TOP2-β, we applied our newly developed scoring function, dubbed AutoDock4RAP, to evaluate the binding modes of VP-16, m-AMSA, and mitoxantrone to the cleavage complexes. Docking reproduced crystallographic binding mode of VP-16 in a ternary complex of TOP2-β with root-mean-square deviation of 0.65 Å. Molecular dynamics simulation of the complex confirmed the crystallographic binding mode of VP-16 and the conformation of the residue R503. Drug-related conformational changes in R503 have been observed in ternary complexes with m-AMSA and mitoxantrone. However, the R503 rotamers in these two simulations deviate from their crystallographic conformations, indicating a relaxation dynamics from the conformations determined with the drug replacement procedure. The binding mode of VP-16 in the cleavage complex of TOP2-α was determined by the conjoint use of docking and molecular dynamics simulations, which fell within a similar binding pocket of TOP2-β cleavage complex. Our findings may facilitate more efficient design efforts targeting TOP2-α specific drugs.
II 型拓扑异构酶(TOP2)是在 DNA 复制和转录过程中通过瞬时切割双链并与 DNA 形成切割复合物来解决拓扑问题的酶。几种著名的抗癌药物通过稳定切割复合物并导致 DNA 永久断裂来抑制 TOP2。为了区分 TOP2-α 和 TOP2-β 中的药物结合模式,我们应用了新开发的评分函数,称为 AutoDock4RAP,来评估 VP-16、m-AMSA 和米托蒽醌与切割复合物的结合模式。对接重现了 TOP2-β 与根均方偏差为 0.65 Å 的三元复合物中 VP-16 的晶体结合模式。复合物的分子动力学模拟证实了 VP-16 的晶体结合模式和残基 R503 的构象。在与 m-AMSA 和米托蒽醌的三元复合物中观察到 R503 残基的药物相关构象变化。然而,这两个模拟中的 R503 旋转异构体偏离了它们的晶体构象,表明药物替代程序确定的构象存在松弛动力学。通过对接和分子动力学模拟的联合使用确定了 TOP2-α 切割复合物中 VP-16 的结合模式,该模式位于 TOP2-β 切割复合物的相似结合口袋内。我们的发现可能有助于更有效地设计针对 TOP2-α 特异性药物的努力。