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首页> 外文期刊>The Journal of Chemical Physics >Electrostatic specificity in molecular ligand design
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Electrostatic specificity in molecular ligand design

机译:分子配体设计中的静电特异性

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摘要

Designing ligand molecules that bind with high affinity and specificity to a target molecule (or a family of related targets) is a fundamental goal of molecular biophysical research. While it is generally recognized that electrostatic interactions can contribute to binding specificity, it is unclear whether the inclusion of interactions that result in tight binding also necessarily leads to highly specific binding. Here we make use of recently developed charge-optimization techniques to explore the affinity-specificity relation in the context of electrostatic interactions. Using model problems we find that affinity-optimized electrostatic interactions do not necessarily create specificity. Furthermore, we develop several rigorous methods that indicate how best to perturb affinity-optimized ligand-charge distributions to increase specificity with minimal sacrifice in affinity for the target or target set. We provide a theoretical framework for improving specificity against any number of known receptors and/or binding modes as well as against uncharacterized receptors. (C) 2000 American Institute of Physics. [S0021-9606(00)51520-7]. [References: 26]
机译:设计以高亲和力和特异性结合至靶标分子(或相关靶标家族)的配体分子是分子生物物理研究的基本目标。虽然通常认为静电相互作用可以促进结合特异性,但是不清楚导致紧密结合的相互作用是否也必然导致高度特异性的结合。在这里,我们利用最近开发的电荷优化技术来探索在静电相互作用中的亲和力-特异性关系。使用模型问题,我们发现亲和力优化的静电相互作用不一定会产生特异性。此外,我们开发了几种严格的方法,这些方法表明如何最好地扰动亲和力优化的配体-电荷分布,以在不牺牲靶标或靶标集的亲和力的情况下增加特异性。我们提供了用于提高针对许多已知受体和/或结合模式以及针对未表征受体的特异性的理论框架。 (C)2000美国物理研究所。 [S0021-9606(00)51520-7]。 [参考:26]

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