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理解氢氟烷烃中的溶剂化作用:从头算计算与化学力显微镜

Understanding solvation in hydrofluoroalkanes: ab initio calculations and chemical force microscopy.

作者信息

Wu Libo, Peguin Robson P S, da Rocha Sandro R P

机构信息

Department of Chemical Engineering and Materials Science, Wayne State University, 5050 Anthony Wayne Drive, Detroit, Michigan 48202, USA.

出版信息

J Phys Chem B. 2007 Jul 19;111(28):8096-104. doi: 10.1021/jp071205y. Epub 2007 Jun 20.

Abstract

Understanding solvation in hydrofluoroalkane (HFA) propellants is of great importance for the development of novel pressurized metered-dose inhaler (pMDI) formulations. HFA-based pMDIs are not only the most widely used inhalation therapy devices for treating lung diseases, but they also hold promise as vehicles for the systemic delivery of biomolecules to and through the lungs. In this work we propose a combined microscopic experimental and computational approach to quantitatively relate the chemistry of moieties to their HFA-philicity. Binding energy calculations are used to determine the degree of interaction between a propellant HFA and candidate fragments. We define a new quantity, the enhancement factor E, which also takes into account fragment-fragment interactions. This quantity is expected to correlate well with the solubility and the ability of the moieties of interest to impart stability to colloidal dispersions in HFAs. We use a methyl-based (CH) segment and its fluorinated analog (CF) to test our approach. CH is an important baseline case since it represents the tails of surfactants in FDA-approved pMDIs. CF was chosen due to the improved solubility and ability of this chemistry to stabilize aqueous dispersions in HFAs. Adhesion force from Chemical Force Microscopy (CFM) is used as an experimental analog to the binding energy calculations. The force of interaction between a chemically modified AFM tip and substrate is measured in a model HFA, which is a liquid at ambient conditions. Silanes with the same chemistry as the fragments used in the ab initio calculations allow for direct comparison between the two techniques. The CFM results provide an absolute scale for HFA-philicity. Single molecule (pair) forces calculated from the CFM experiments are shown to be in very good agreement to the E determined from the ab initio calculations. The ab initio calculations and CFM are corroborated by previous experimental studies where propellants HFAs are seen to better solvate the CF functionality.

摘要

了解氢氟烷烃(HFA)推进剂中的溶剂化作用对于新型加压定量吸入器(pMDI)制剂的开发至关重要。基于HFA的pMDI不仅是治疗肺部疾病最广泛使用的吸入治疗装置,而且作为生物分子通过肺部进行全身递送的载体也具有前景。在这项工作中,我们提出了一种结合微观实验和计算的方法,以定量地将部分的化学性质与其亲HFA性联系起来。结合能计算用于确定推进剂HFA与候选片段之间的相互作用程度。我们定义了一个新的量,增强因子E,它也考虑了片段-片段相互作用。预计这个量与感兴趣部分的溶解度以及赋予HFA中胶体分散体稳定性的能力有很好的相关性。我们使用甲基基(CH)片段及其氟化类似物(CF)来测试我们的方法。CH是一个重要的基线情况,因为它代表了FDA批准的pMDI中表面活性剂的尾部。选择CF是因为这种化学性质具有改善的溶解度以及稳定HFA中水分散体的能力。化学力显微镜(CFM)的粘附力用作结合能计算的实验类似物。在模型HFA(在环境条件下为液体)中测量化学修饰的AFM尖端与底物之间的相互作用力。与从头算计算中使用的片段具有相同化学性质的硅烷允许在这两种技术之间进行直接比较。CFM结果提供了亲HFA性的绝对尺度。从CFM实验计算出的单分子(对)力与从头算计算确定的E非常吻合。从头算计算和CFM得到了先前实验研究的证实,在这些研究中可以看到推进剂HFA能更好地溶剂化CF官能团。

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