Institut für Organische Chemie, Technische Universität Bergakademie Freiberg, Leipziger Straße 29, 09596 Freiberg, Germany.
Molecules. 2022 Nov 7;27(21):7630. doi: 10.3390/molecules27217630.
The cyclopentyl group was expected to act as a building block for artificial carbohydrate receptors and to participate in van der Waals contacts with the carbohydrate substrate in a similar way as observed for the pyrrolidine ring of proline in the crystal structures of protein-carbohydrate complexes. Systematic binding studies with a series of 1,3,5-trisubstituted 2,4,6-triethylbenzenes bearing various cycloalkyl groups as recognition units provided indications of the involvement of these groups in the complexation process and showed the influence of the ring size on the receptor efficiency. Representatives of compounds that exhibit a macrocyclic backbone and flexible side arms were now chosen as further model systems to investigate whether the previously observed effects represent a general trend. Binding studies with these macrocycles towards -D-glucopyranoside, an all-equatorial substituted carbohydrate substrate, included H NMR spectroscopic titrations and microcalorimetric investigations. The performed studies confirmed the previously observed tendency and showed that the compound bearing cyclohexyl groups displays the best binding properties.
环戊基基团有望作为人工碳水化合物受体的构建块,并以类似于脯氨酸中环丙基的方式参与范德华接触与碳水化合物底物在蛋白质-碳水化合物复合物的晶体结构中观察到的。用一系列带有各种环烷基作为识别单元的 1,3,5-三取代 2,4,6-三乙基苯进行系统的结合研究提供了这些基团参与络合过程的迹象,并显示了环大小对受体效率的影响。现在选择具有大环骨架和柔性侧臂的化合物代表作为进一步的模型系统,以研究以前观察到的效应是否代表一般趋势。这些大环化合物与-D-吡喃葡萄糖苷(一种全顺式取代的碳水化合物底物)的结合研究包括 H NMR 光谱滴定和微量量热法研究。进行的研究证实了以前观察到的趋势,并表明含有环己基的化合物具有最佳的结合性能。