首页> 外文期刊>Journal of chemical theory and computation: JCTC >General Theory of Fragment Linking in Molecular Design: Why Fragment Linking Rarely Succeeds and How to Improve Outcomes
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General Theory of Fragment Linking in Molecular Design: Why Fragment Linking Rarely Succeeds and How to Improve Outcomes

机译:分子设计中碎片中的一般理论:为什么片段连接很少成功,如何改善结果

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Linking two fragments binding in nearby subpockets together has become an important technique in fragment-based drug discovery to optimize the binding potency of fragment hits. Despite the expected favorable translational and orientational entropic contribution to the binding free energy of the linked molecule, brute force enumeration of chemical linker for linking fragments is rarely successful, and the vast majority of linked molecules do not exhibit the expected gains of binding potency. In this paper, we examine the physical factors that contribute to the change of binding free energy from fragment linking and develop a method to rigorously calculate these different physical contributions. We find from these analyses that multiple confounding factors make successful fragment linking strategies rare, including (1) possible change of the binding mode of the fragments in the linked state compared to separate binding of the fragments, (2) unfavorable intramolecular strain energy of the bioactive conformation of the linked molecule, (3) unfavorable interaction between the linker and the protein, (4) favorable interaction energies between two fragments in solution when not chemically linked that offset the expected entropy loss for the formation of fragment pair, (5) complex compensating configurational entropic effects beyond the simplistic rotational and translational analysis. We here have applied a statistically mechanically rigorous approach to compute the fragment linking coefficients of 10 pharmaceutically interesting systems and quantify the contribution of each physical component to the binding free energy of the linked molecule. Based on these studies, we have found that the change in the relative configurational entropy of the two fragments in the protein binding pocket (a term neglected to our knowledge in all previous analyses) substantially offsets the favorable expected rotational and translational entropic contributions to the binding free energy of the linked molecule. This configurational restriction of the fragments in the binding pocket of the proteins is found to be, in our analysis, the dominant reason why most fragment linking strategies do not exhibit the expected gains of binding potency. These findings have further provided rich physical insights, which we expect should facilitate more successful fragment linking strategies to be formulated in the future.
机译:在基于片段的药物发现中,将两个结合在附近子小盒中的片段连接在一起,以优化片段命中的结合效力,已成为一项重要的技术。尽管预期对连接分子的结合自由能有有利的平移和取向熵贡献,但用蛮力计数连接片段的化学连接剂很少成功,而且绝大多数连接分子没有显示出预期的结合效力增益。在本文中,我们研究了导致碎片连接产生的结合自由能变化的物理因素,并开发了一种严格计算这些不同物理因素的方法。我们从这些分析中发现,多种混杂因素使成功的片段连接策略变得罕见,包括(1)与片段的单独结合相比,连接状态下片段的结合模式可能发生改变,(2)连接分子的生物活性构象的不利分子内应变能,(3)连接体和蛋白质之间的不利相互作用,(4)溶液中两个片段之间的有利相互作用能(当未进行化学连接时),抵消了形成片段对的预期熵损失,(5)复杂的补偿构型熵效应,超出了简单的旋转和平移分析。我们在这里应用了一种统计上严格的方法来计算10个药学上有趣的系统的片段连接系数,并量化每个物理组分对连接分子结合自由能的贡献。基于这些研究,我们发现蛋白质结合袋中两个片段的相对构型熵的变化(我们在之前的所有分析中都忽略了这个术语)极大地抵消了对连接分子结合自由能有利的预期旋转熵和平移熵贡献。在我们的分析中,我们发现,蛋白质结合袋中片段的这种构型限制是大多数片段连接策略没有表现出预期结合效力增益的主要原因。这些发现进一步提供了丰富的物理见解,我们预计这将有助于未来制定更成功的片段链接策略。

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