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配体结合的焓效率。

Enthalpic efficiency of ligand binding.

机构信息

Sanofi-Aventis CHINOIN, Budapest, Hungary.

出版信息

J Chem Inf Model. 2010 Sep 27;50(9):1536-41. doi: 10.1021/ci100125a.

Abstract

The thermodynamics of ligand-protein binding has received much attention recently. In the present contribution we focus on the enthalpic component of binding. The dissociation constant, pK(d), was decomposed into enthalpic and entropic components (pK(d) = pK(H) + pK(S)), and pK(H), defined as pK(H) = -ΔH/(2.303·RT) was used to characterize the enthalpy contribution to binding. It was found that the maximal achievable pK(H) decreases with increasing molecular size. This is in contrast to maximal pK(d) that increases with molecular size until it achieves a plateau. Size-independent enthalpic efficiency (SIHE) was defined as SIHE = pK(H)/40·HA(0.3), with HA being the number of heavy atoms. SIHE allows a size unbiased comparative binding characterization of compounds. It can find use in hit and lead selection and also in monitoring optimization in drug discovery programs. The physical background of decreasing maximal pK(H) with molecular size is discussed, and its consequences to drug discovery are analyzed. It is concluded that the feasibility of simultaneous optimization of affinity and enthalpy diminishes with increasing molecular size. Consequently, binding thermodynamics considerations are to be applied primarily in hit prioritization and hit-to-lead optimization.

摘要

配体-蛋白质结合的热力学最近受到了广泛关注。在本研究中,我们专注于结合的焓成分。离解常数 pK(d) 被分解为焓和熵分量(pK(d) = pK(H) + pK(S)),定义 pK(H) = -ΔH/(2.303·RT) 来描述结合的焓贡献。结果发现,最大可实现的 pK(H) 随分子尺寸的增加而降低。这与最大 pK(d) 形成对比,最大 pK(d) 随分子尺寸的增加而增加,直到达到一个平台。与大小无关的焓效率(SIHE)被定义为 SIHE = pK(H)/40·HA(0.3),其中 HA 是重原子的数量。SIHE 允许对化合物进行无大小偏见的比较结合特性描述。它可用于命中和先导化合物的选择,并可用于监测药物发现项目中的优化。讨论了分子尺寸与最大 pK(H) 降低的物理背景,并分析了其对药物发现的影响。结论是,随着分子尺寸的增加,同时优化亲和力和焓的可行性降低。因此,结合热力学考虑主要应用于命中优先级和命中到先导化合物的优化。

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