Institute of Organic Chemistry and Biochemistry , Academy of Sciences of the Czech Republic , 117 20 Prague 6 , Czech Republic.
Department of Physical Chemistry , Institute of Chemical Technology , 166 28 Prague 6 , Czech Republic.
J Phys Chem B. 2018 Apr 26;122(16):4546-4557. doi: 10.1021/acs.jpcb.7b12510. Epub 2018 Apr 12.
Binding affinities and stoichiometries of Na and Ca ions to phospholipid bilayers are of paramount significance in the properties and functionality of cellular membranes. Current estimates of binding affinities and stoichiometries of cations are, however, inconsistent due to limitations in the available experimental and computational methods. In this work, we improve the description of the binding details of Na and Ca ions to a 1-palmitoyl-2-oleoyl-phosphatidylcholine (POPC) bilayer by implicitly including electronic polarization as a mean field correction, known as the electronic continuum correction (ECC). This is applied by scaling the partial charges of a selected state-of-the-art POPC lipid model for molecular dynamics simulations. Our improved ECC-POPC model reproduces not only the experimentally measured structural parameters for the ion-free membrane, but also the response of lipid headgroup to a strongly bound cationic amphiphile, as well as the binding affinities of Na and Ca ions. With our new model, we observe on the one side negligible binding of Na ions to POPC bilayer, while on the other side stronger interactions of Ca primarily with phosphate oxygens, which is in agreement with the previous interpretations of the experimental spectroscopic data. The present model results in Ca ions forming complexes with one to three POPC molecules with almost equal probabilities, suggesting more complex binding stoichiometries than those from simple models used to interpret the NMR data previously. The results of this work pave the way to quantitative molecular simulations with realistic electrostatic interactions of complex biochemical systems at cellular membranes.
钠离子和钙离子与磷脂双层的结合亲和力和化学计量比对于细胞膜的性质和功能至关重要。然而,由于现有实验和计算方法的限制,目前对阳离子结合亲和力和化学计量比的估计并不一致。在这项工作中,我们通过隐式地将电子极化作为平均场修正(称为电子连续体修正,ECC),改进了钠离子和钙离子与 1-棕榈酰-2-油酰-磷脂酰胆碱(POPC)双层结合细节的描述。这是通过缩放选定的最先进的 POPC 脂质模型的部分电荷来实现的,用于分子动力学模拟。我们改进的 ECC-POPC 模型不仅再现了无离子膜的实验测量结构参数,还再现了脂质头部基团对强结合阳离子两亲物的响应,以及钠离子和钙离子的结合亲和力。在我们的新模型中,一方面观察到钠离子与 POPC 双层几乎没有结合,另一方面钙离子主要与磷酸氧结合,这与以前对实验光谱数据的解释一致。该模型表明,钙离子与一个到三个 POPC 分子形成复合物的概率几乎相等,这表明与以前用于解释 NMR 数据的简单模型相比,结合化学计量比更复杂。这项工作的结果为在细胞膜上具有复杂生化系统的真实静电相互作用的定量分子模拟铺平了道路。