Center for High Performance Computing, Institute of Advanced Computing and Digital Engineering, Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences, 1068 Xueyuan Boulevard, University Town of Shenzhen, Xili Nanshan, Shenzhen 518055, China, Department of Chemistry and Institutes of Molecular Technology for Drug Discovery and Synthesis, State Key Laboratory of Synthetic Chemistry, The University of Hong Kong, Pokfulam Road, Hong Kong and Laboratory of Molecular Pharmacology, Center for Cancer Research, National Cancer Institute, Bethesda, MD, USA.
Nucleic Acids Res. 2013 Dec;41(22):10010-9. doi: 10.1093/nar/gkt791. Epub 2013 Sep 9.
Topoisomerase IB (Top1) inhibitors, such as camptothecin (CPT), stabilize the Top1-DNA cleavage complex in a DNA sequence-dependent manner. The sequence selectivity of Top1 inhibitors is important for targeting specific genomic sequences of therapeutic value. However, the molecular mechanisms underlying this selectivity remain largely unknown. We performed molecular dynamics simulations to delineate structural, dynamic and energetic features that contribute to the differential sequence selectivity of the Top1 inhibitors. We found the sequence selectivity of CPT to be highly correlated with the drug binding energies, dynamic and structural properties of the linker domain. Chemical insights, gained by per-residue binding energy analysis revealed that the non-polar interaction between CPT and nucleotide at the +1 position of the cleavage site was the major (favorable) contributor to the total binding energy. Mechanistic insights gained by a potential of mean force analysis implicated that the drug dissociation step was associated with the sequence selectivity. Pharmaceutical insights gained by our molecular dynamics analyses explained why LMP-776, an indenoisoquinoline derivative under clinical development at the National Institutes of Health, displays different sequence selectivity when compared with camptothecin and its clinical derivatives.
拓扑异构酶 IB(Top1)抑制剂,如喜树碱(CPT),以 DNA 序列依赖性方式稳定 Top1-DNA 断裂复合物。Top1 抑制剂的序列选择性对于靶向具有治疗价值的特定基因组序列很重要。然而,这种选择性的分子机制在很大程度上仍然未知。我们进行了分子动力学模拟,以描绘有助于 Top1 抑制剂差异序列选择性的结构、动态和能量特征。我们发现 CPT 的序列选择性与药物结合能、连接子结构域的动态和结构特性高度相关。通过残基结合能分析获得的化学见解表明,CPT 与断裂位点+1 位置核苷酸之间的非极性相互作用是总结合能的主要(有利)贡献者。通过平均力势分析获得的机制见解表明,药物解离步骤与序列选择性有关。通过我们的分子动力学分析获得的药物化学见解解释了为什么 LMP-776,一种正在美国国立卫生研究院进行临床开发的吲唑异喹啉衍生物,与喜树碱及其临床衍生物相比表现出不同的序列选择性。