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The flexibility–complementarity dichotomy in receptor–ligand interactions

机译:受体-配体相互作用的灵活性-互补性二分法

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摘要

Synthetic supramolecular complexes provide an opportunity for quantitative systematic exploration of the relationship between chemical structure and molecular recognition phenomena. A family of closely related zinc porphyrin–pyridine complexes was used to examine the interplay of conformational flexibility and geometric complementarity in determining the selectivity of molecular recognition events. The association constants of 48 zinc porphyrin–pyridine complexes were measured in two different solvents, toluene and 1,1,2,2-tetrachloroethane (TCE). These association constants were used to construct 32 chemical double mutant cycles to dissect the free energy contributions of intramolecular H-bonds between the phenol side arms of the porphyrins and the ester or amide side arms of the pyridine ligands. Effective molarities (EM) for the intramolecular interactions were determined by comparison with the corresponding intermolecular H-bonding interactions. The values of EM do not depend on the solvent and are practically identical for amide and ester H-bond acceptors located at the same site on the ligand framework. However, there are variations of an order of magnitude in EM depending on the flexibility of the linker used to connect the H-bond acceptors to the pyridine ligands. Rigid aromatic linkers give values of EM that are an order of magnitude higher than the values of EM for the corresponding ester linkers, which have one additional torsional degree of freedom. However, the most flexible ether linkers give values of EM that are also higher than the values of EM for the corresponding ester linkers, which have one less torsional degree of freedom. Although the penalty for conformational restriction on binding is higher for the more flexible ether linkers, this flexibility allows optimization of the geometric complementarity of the ligand for the receptor, so there is a trade off between preorganization and fit.
机译:合成的超分子复合物为定量系统探索化学结构与分子识别现象之间的关系提供了机会。一个密切相关的卟啉锌-吡啶锌络合物家族被用来检查构象柔韧性和几何互补性之间的相互作用,以确定分子识别事件的选择性。在两种不同的溶剂甲苯和1,1,2,2-四氯乙烷(TCE)中测量了48种卟啉-吡啶锌配合物的缔合常数。这些缔合常数用于构建32个化学双突变周期,以分析卟啉的酚侧臂与吡啶配体的酯或酰胺侧臂之间的分子内H键的自由能贡献。通过与相应的分子间氢键相互作用的比较来确定分子内相互作用的有效摩尔浓度(EM)。 EM的值不取决于溶剂,并且对于位于配体骨架上相同位置的酰胺和酯H键受体而言实际上是相同的。但是,EM中存在一个数量级的变化,这取决于用于将H键受体与吡啶配体连接的接头的柔性。刚性芳族连接基团的EM值比相应的酯连接基团的EM值高一个数量级,后者具有一个额外的扭转自由度。但是,最灵活的醚连接基的EM值也比相应的酯连接基的EM值高,而相应的酯连接基的扭转自由度小。尽管对于更灵活的醚接头,结合构象限制的代价更高,但是这种灵活性允许优化受体配体的几何互补性,因此在预组织和拟合之间需要权衡。

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