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应用亲和毛细管电泳和量子力学计算研究基于六芳基苯的受体与锂离子的结合。

Affinity capillary electrophoresis and quantum mechanical calculations applied to the investigation of hexaarylbenzene-based receptor binding with lithium ion.

机构信息

Institute of Organic Chemistry and Biochemistry, v.v.i., Academy of Sciences of the Czech Republic, Flemingovo nám., Czech Republic.

出版信息

J Sep Sci. 2011 Sep;34(18):2433-40. doi: 10.1002/jssc.201100092. Epub 2011 Jul 21.

Abstract

In this study, two complementary approaches, affinity capillary electrophoresis (ACE) and quantum mechanical density functional theory (DFT) calculations, have been employed for quantitative characterization and structure elucidation of the complex between hexaarylbenzene (HAB)-based receptor R and lithium ion Li(+) . First, by means of ACE, the apparent binding constant of LiR(+) complex (K LiR +) in methanol was determined from the dependence of the effective electrophoretic mobilities of LiR(+) complex on the concentration of lithium ions in the 25 mM Tris/50 mM chloroacetate background electrolyte (BGE) using non-linear regression analysis. Prior to regression analysis, the effective electrophoretic mobilities of the LiR(+) complex were corrected to reference temperature 25 °C and constant ionic strength 25 mM. The apparent binding constant of the LiR(+) complex in the above methanolic BGE was evaluated as logK LiR + = 1.15±0.09. Second, the most probable structures of nonhydrated LiR(+) and hydrated LiR(+)·3H(2)O complexes were derived by DFT calculations. The optimized structure of the hydrated LiR(+)·3H(2)O complex was found to be more realistic than the nonhydrated LiR(+) complex because of the considerably higher binding energy of LiR(+)·3H(2)O complex (500.4 kJ/mol) as compared with LiR(+) complex (427.5 kJ/mol).

摘要

在这项研究中,采用了两种互补的方法,亲和毛细管电泳(ACE)和量子力学密度泛函理论(DFT)计算,用于定量表征和阐明六芳基苯(HAB)基受体 R 与锂离子 Li(+)之间的复合物。首先,通过 ACE,根据锂离子在 25mM Tris/50mM 氯乙酸背景电解质(BGE)中的浓度依赖性,通过非线性回归分析确定甲醇中 LiR(+)复合物的表观结合常数(K LiR ⁇ )。在回归分析之前,将 LiR(+)复合物的有效电泳迁移率校正至参考温度 25°C 和恒定离子强度 25mM。在上述甲醇 BGE 中,LiR(+)复合物的表观结合常数评估为 logK LiR ⁇ = 1.15±0.09。其次,通过 DFT 计算得出了未水合的 LiR(+)和水合的 LiR(+)·3H 2 O 复合物的最可能结构。由于水合的 LiR(+)·3H 2 O 复合物(500.4kJ/mol)的结合能明显高于 LiR(+)复合物(427.5kJ/mol),因此优化后的水合的 LiR(+)·3H 2 O 复合物结构比未水合的 LiR(+)复合物更现实。

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