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取代基的空间效应主导取代芳烃的分子静电势。

Through-Space Effects of Substituents Dominate Molecular Electrostatic Potentials of Substituted Arenes.

作者信息

Wheeler Steven E, Houk K N

机构信息

Department of Chemistry and Biochemistry University of California, Los Angeles, CA 90095.

出版信息

J Chem Theory Comput. 2009 Sep 8;5(9):2301-2312. doi: 10.1021/ct900344g.

Abstract

Model systems have been studied using density functional theory to assess the contributions of π-resonance and through-space effects on electrostatic potentials of substituted arenes. The results contradict the widespread assumption that changes in molecular ESPs reflect only local changes in the electron density. Substituent effects on the ESP above the molecular plane are commonly attributed to changes in the aryl π-system. We show that ESP changes for a collection of substituted benzenes and more complex aromatic systems can be accounted for mostly by through-space effects, with no change in the aryl π-electron density. Only when π-resonance effects are substantial do they influence changes in the ESP above the aromatic ring to any extent. Examples of substituted arenes studied here are taken from the fields of drug design, host-guest chemistry, and crystal engineering. These findings emphasize the potential pitfalls of assuming ESP changes reflect changes in the local electron density. Since ESP changes are frequently used to rationalize and predict intermolecular interactions, these findings have profound implications for our understanding of substituent effects in countless areas of chemistry and molecular biology. Specifically, in many non-covalent interactions there are significant, often neglected, through-space interactions with the substituents. Finally, the present results explain the perhaps unexpectedly good performance of many molecular mechanics force-fields applied to supramolecular assembly phenomena and π-π interactions in biological systems despite the neglect of the polarization of the aryl π-system by substituents.

摘要

已使用密度泛函理论研究了模型系统,以评估π共振和空间效应对取代芳烃静电势的贡献。结果与普遍假设相矛盾,即分子静电势的变化仅反映电子密度的局部变化。分子平面上方静电势的取代基效应通常归因于芳基π体系的变化。我们表明,一系列取代苯和更复杂芳香体系的静电势变化主要可由空间效应来解释,而芳基π电子密度并无变化。只有当π共振效应显著时,它们才会在任何程度上影响芳香环上方静电势的变化。此处研究的取代芳烃实例取自药物设计、主客体化学和晶体工程领域。这些发现强调了假设静电势变化反映局部电子密度变化的潜在陷阱。由于静电势变化经常被用于合理化和预测分子间相互作用,这些发现对我们理解化学和分子生物学无数领域中的取代基效应具有深远影响。具体而言,在许多非共价相互作用中,存在与取代基的显著的、常常被忽视的空间相互作用。最后,目前的结果解释了尽管忽略了取代基对芳基π体系的极化作用,但许多分子力学力场在应用于超分子组装现象和生物系统中的π-π相互作用时,可能具有出乎意料的良好性能。

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