Tsvetkov Vladimir B, Solov'eva Anna B, Melik-Nubarov Nickolay S
Institute for Physical-Chemical Medicine, Malaya Pirogovskaya Str., 1a, Moscow 119435, Russia.
Phys Chem Chem Phys. 2014 Jun 14;16(22):10903-13. doi: 10.1039/c3cp55510k.
Recently it has been shown that Chlorin e6 (Ce6) when complexed with Pluronics (hydrophilic ethylene and propylene oxide block copolymers) and poly(N-vinylpyrrolidone) (PVP) exhibits considerably higher phototoxicity towards tumor cells than free Ce6. The present work aimed to model Ce6 interactions with hydrophilic Pluronic F127 and PVP and find out the nature of intermolecular forces stabilizing these complexes. Modeling included 3 steps: (i) application of molecular dynamics to study polymer folding using AMBER 8 program, (ii) evaluation of partial charges in the Ce6 molecule using different quantum mechanical, semi-empirical and topological approaches and (iii) docking analysis of Ce6 interactions with polymer coils using AUTODOCK 4.2. It was found that the folding in regular polymers does not occur stochastically, but involves the formation of "primary" helical structures, which further combined to form hairpin-like "secondary" structures. The latter in turn associated to form coils with minimal solvent accessible hydrophobic area. The Ce6 ring lies flat on the surface of the polymer coil at the interface between hydrophobic and hydrophilic regions. Calculations showed higher affinity of Ce6 for PVP in comparison to Pluronic and revealed marginal contribution of Coulomb forces to the stabilization of both complexes, which are mainly stabilized by van der Waals and hydrogen interactions.
最近研究表明,二氢卟吩e6(Ce6)与普朗尼克(亲水性环氧乙烷和环氧丙烷嵌段共聚物)和聚N-乙烯基吡咯烷酮(PVP)复合时,对肿瘤细胞的光毒性比游离Ce6高得多。本研究旨在模拟Ce6与亲水性普朗尼克F127和PVP的相互作用,并找出稳定这些复合物的分子间力的性质。模拟包括三个步骤:(i)应用分子动力学,使用AMBER 8程序研究聚合物折叠;(ii)使用不同的量子力学、半经验和拓扑方法评估Ce6分子中的部分电荷;(iii)使用AUTODOCK 4.2对Ce6与聚合物线圈的相互作用进行对接分析。研究发现,规则聚合物中的折叠不是随机发生的,而是涉及“初级”螺旋结构的形成,这些结构进一步组合形成发夹状的“次级”结构。后者又相互关联形成溶剂可及疏水面积最小的线圈。Ce6环平躺在聚合物线圈表面疏水和亲水区域之间的界面处。计算表明,与普朗尼克相比,Ce6对PVP的亲和力更高,并且库仑力对两种复合物稳定性的贡献很小,这两种复合物主要通过范德华力和氢键相互作用稳定。