Sorbonne Université, CNRS, Laboratoire de Chimie Theórique , 75252 Cedex 05 Paris , France.
J Phys Chem B. 2018 Jun 21;122(24):6371-6376. doi: 10.1021/acs.jpcb.8b03194. Epub 2018 Jun 11.
Phosphate is an essential component of cell functions, and the specific transport of phosphorus into a cell is mediated by phosphate-binding protein (PBP). The mechanism of PBP-phosphate recognition remains controversial: on the basis of similar binding affinities at acidic and basic pHs, it is believed that the hydrogen network in the binding site is flexible to adapt to different protonation states of phosphates. However, only hydrogen (1H) phosphate was observed in the sub-angstrom X-ray structures. To address this inconsistency, we performed molecular dynamics simulations using the AMOEBA polarizable force field. Structural and free energy data from simulations suggested that 1H phosphate was the preferred bound form at both pHs. The binding of dihydrogen (2H) phosphate disrupted the hydrogen-bond network in the PBP pocket, and the computed affinity was much weaker than that of 1H phosphate. Furthermore, we showed that the discrepancy in the studies described above is resolved if the interaction between phosphate and the buffer agent is taken into account. The calculated apparent binding affinities are in excellent agreement with experimental measurements. Our results suggest the high specificity of PBP for 1H phosphate and highlight the importance of the buffer solution for the binding of highly charged ligands.
磷酸盐是细胞功能的重要组成部分,而磷向细胞内的特定运输则是由磷酸盐结合蛋白(PBP)介导的。PBP-磷酸盐识别的机制仍存在争议:基于在酸性和碱性 pH 值下相似的结合亲和力,人们认为结合位点中的氢键网络具有灵活性,可以适应磷酸盐不同的质子化状态。然而,在亚埃 X 射线结构中仅观察到 1H 磷酸盐。为了解决这一不一致性,我们使用 AMOEBA 极化力场进行了分子动力学模拟。模拟的结构和自由能数据表明,在两种 pH 值下,1H 磷酸盐都是首选的结合形式。二氢(2H)磷酸盐的结合破坏了 PBP 口袋中的氢键网络,计算得到的亲和力比 1H 磷酸盐弱得多。此外,我们表明,如果考虑磷酸盐与缓冲剂之间的相互作用,上述研究中的差异就可以得到解决。计算得出的表观结合亲和力与实验测量值非常吻合。我们的结果表明 PBP 对 1H 磷酸盐具有很高的特异性,并强调了缓冲溶液对高电荷配体结合的重要性。