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作为影响卤键形成因素探针的溴……O配合物:溴苯和溴嘧啶与丙酮的相互作用

Br···O Complexes as Probes of Factors Affecting Halogen Bonding: Interactions of Bromobenzenes and Bromopyrimidines with Acetone.

作者信息

Riley Kevin E, Murray Jane S, Politzer Peter, Concha Monica C, Hobza Pavel

机构信息

Institute of Organic Chemistry and Biochemistry, Academy of Sciences of the Czech Republic, Center for Biomolecules and Complex Molecular Systems and Department of Physical Chemistry, Palacky University, 771 46 Olomouc, Czech Republic, Department of Chemistry, P.O. Box 23346, University of Puerto Rico, Rio Piedras, PR 00931, Department of Chemistry, University of New Orleans, New Orleans, Louisiana 70148, and Department of Chemistry, Cleveland State University, Cleveland, Ohio 44115.

出版信息

J Chem Theory Comput. 2009 Jan 13;5(1):155-63. doi: 10.1021/ct8004134. Epub 2008 Dec 18.

Abstract

Halogen bonding is a unique type of noncovalent binding phenomenon in which a halogen atom interacts attractively with an electronegative atom such as oxygen or nitrogen. These types of interactions have been the subject of many recent investigations because of their potential in the development of new materials and pharmaceutical compounds. Recently, it was observed that most halogen bonding interactions in biological contexts involve close contacts between a halogen bound to an aromatic ring and a carbonyl oxygen on a protein's backbone structure. In this work we investigate interactions of substituted bromobenzenes and bromopyrimidines with acetone to ascertain the effects of various substituents upon the strengths of these interactions. It was found that replacement of ring hydrogens in these systems has dramatic effects upon the interaction strengths of the resulting complexes, which have interaction energies between -1.80 and -7.11 kcal/mol. Examination of the electrostatic potentials of the substituted bromobenzene and bromopyrimidine monomers indicates that the addition of substituents has a large influence upon the most positive electrostatic potential on the surface of the interacting bromine and thus modulates these halogen bonding interactions. Results obtained using the symmetry-adapted perturbation theory (SAPT) interaction energy decomposition procedure also indicate that electrostatic interactions play the key role in these halogen bonding interactions. These results have important implications in drug design and crystal engineering. Halogen bonds have been a subject of great interest in these fields because of their unique noncovalent bonding characteristics.

摘要

卤键是一种独特的非共价结合现象,其中卤原子与电负性原子(如氧或氮)发生吸引作用。由于这些相互作用在新型材料和药物化合物开发中的潜力,它们已成为近期许多研究的主题。最近观察到,在生物环境中,大多数卤键相互作用涉及与芳香环相连的卤原子与蛋白质主链结构上的羰基氧之间的紧密接触。在这项工作中,我们研究了取代溴苯和溴嘧啶与丙酮的相互作用,以确定各种取代基对这些相互作用强度的影响。结果发现,这些体系中环氢的取代对所得配合物的相互作用强度有显著影响,其相互作用能在-1.80至-7.11千卡/摩尔之间。对取代溴苯和溴嘧啶单体的静电势的研究表明,取代基的添加对相互作用的溴表面上最正的静电势有很大影响,从而调节这些卤键相互作用。使用对称适配微扰理论(SAPT)相互作用能分解程序获得的结果也表明,静电相互作用在这些卤键相互作用中起关键作用。这些结果在药物设计和晶体工程中具有重要意义。由于卤键独特的非共价键特征,它们在这些领域一直备受关注。

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