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Pairwise Interactions between Linear Alkanes in Water Measured by AFM Force Spectroscopy

机译:AFM力谱法测量水中线性链烷烃之间的成对相互作用

摘要

Pairwise interactions between n-alkanes from decane to octadecane in water have been studied by single-molecule force spectroscopy. The interacting molecules are covalently tethered to the glass substrate and to the probe of an atomic force microscope by water-soluble linkers to facilitate single-molecule detection. However, the measured distribution of rupture forces deviates significantly from the distribution predicted by theoretical models for rupture of individual bonds. To describe the statistics of rupture forces, an analytical model that considers near-simultaneous rupture of two bonds loaded by tethers with different lengths is introduced. The common most probable force analysis approach is used for comparison. In both data analyses, the possible systematic errors due to nonlinear elasticity of polymeric tethers and variations in the shape of the potential of mean force were considered. Experimental distributions of rupture forces are well-fit by the two-bond rupture model using a single set of kinetic parameters for different experiments, while the most probable force approach yields parameters that vary significantly for different samples. The measured activation energies for dissociation of alkanes are close to the free energies predicted by cavity models of hydrophobic interactions. The surface free-energy density is estimated to be ∼21 kJ/(mol nm^2) and is close to the upper limit of free energies used in the computer simulations of hydrophobic interactions in proteins. In contrast to the predictions of the cavity models, the measured activation energy does not increase monotonically with increase in alkane chain size. To explain this discrepancy and the measured distance to the transition-state barrier (∼0.6 nm), it is suggested that alkanes undergo conformational transition to the collapsed state upon dimerization. Change in the alkane conformation from extended to helical has been observed previously for binding of alkanes in water to hydrophobic synthetic receptors. Here, however, conformational change is suggested without geometrical constraints imposed by small cavitands. The proposed collapsed state of the alkane dimers has implications for the kinetics of self-assembly of surfactant micelles.
机译:通过单分子力谱研究了正癸烷在水中的十八烷之间的成对相互作用。相互作用的分子通过水溶性接头与玻璃基板和原子力显微镜的探针共价连接,以促进单分子检测。但是,测得的断裂力分布与理论模型预测的单个键断裂的分布有很大差异。为了描述断裂力的统计数据,引入了一种分析模型,该模型考虑了具有不同长度的绳索所承载的两个键的近同时断裂。常用的最可能的力分析方法用于比较。在这两个数据分析中,都考虑了由于聚合物系链的非线性弹性和平均力势形状变化而可能引起的系统误差。对于不同的实验,使用单组动力学参数的双键断裂模型可以很好地拟合断裂力的实验分布,而最有可能的作用力方法所产生的参数对于不同的样品会有很大的不同。测得的用于解离烷烃的活化能接近于疏水相互作用的腔模型所预测的自由能。表面自由能密度估计为〜21 kJ /(mol nm ^ 2),接近于蛋白质疏水相互作用的计算机模拟中使用的自由能上限。与空腔模型的预测相反,所测得的活化能不会随着烷烃链尺寸的增加而单调增加。为了解释这种差异和到过渡态势垒的测量距离(约0.6 nm),建议烷烃在二聚作用下经历构象转变为塌陷态。先前已经观察到烷烃构象从延伸变为螺旋的变化,以使水中的烷烃与疏水性合成受体结合。但是,在此建议构象变化,而没有由小空泡石施加的几何约束。提出的烷烃二聚体的折叠状态对表面活性剂胶束的自组装动力学具有影响。

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