Tesarowicz Iwona, Oleksyn Barbara J, Nitek Wojciech
Faculty of Chemistry, Jagiellonian University, Kraków, Poland.
Chirality. 2007 Feb;19(2):152-61. doi: 10.1002/chir.20349.
Cinchona alkaloids are very well known antimalarials but the mechanism of their biological action still remains to be elucidated. The structural studies of active erythro and inactive threo alkaloid complexes are an important step to this aim. In this paper results of crystal structure analysis of three cobalt complexes of threo alkaloids are presented: (epiquininium)trichlorocobalt(II) (EpiQnCoCl3), (epiquinidinium)trichlorocobalt(II) (EpiQdCoCl3) and (epidihydrocinchoninium)trichlorocobalt(II) (EpiCnCoCl3). The complexes are zwitterions in which trichlorocobalt substituents are coordinated to quinoline nitrogen atoms and quinuclidine nitrogen atoms are protonated. EpiQnCoCl3 adopts uncommon conformation with quinoline moiety oriented in the opposite direction in comparison to the analogous uncomplexed alkaloid. The packing in the crystal structures is determined mainly by the hydrogen bonds, in which the chlorine atoms of substituents and solvent molecules contribute. Atoms participating in hydrogen bonds in EpiQnCoCl3 and EpiQdCoCl3 form large rings, while in EpiCnCoCl3 only chains are present. Solvent molecules are very important for the packing mode. In contrast to most erythro alkaloids, the hydroxyl oxygen atom in the title complexes forms weak or not well defined hydrogen bonds. The contribution of very weak intramolecular interactions N1--H1...O12 cannot be excluded. Such "trace" interactions can be considered a relic of the unprotonated status of an epi alkaloid.
金鸡纳生物碱是非常著名的抗疟药物,但其生物作用机制仍有待阐明。对活性赤型和非活性苏型生物碱配合物的结构研究是实现这一目标的重要一步。本文介绍了三种苏型生物碱钴配合物的晶体结构分析结果:(表奎宁鎓)三氯钴(II)(EpiQnCoCl3)、(表奎尼丁鎓)三氯钴(II)(EpiQdCoCl3)和(表二氢辛可宁鎓)三氯钴(II)(EpiCnCoCl3)。这些配合物是两性离子,其中三氯钴取代基与喹啉氮原子配位,奎宁环氮原子质子化。与类似的未配位生物碱相比,EpiQnCoCl3的喹啉部分采取了不常见的构象,其取向相反。晶体结构中的堆积主要由氢键决定,其中取代基的氯原子和溶剂分子起作用。参与EpiQnCoCl3和EpiQdCoCl3中氢键的原子形成大环,而在EpiCnCoCl3中只存在链状结构。溶剂分子对堆积模式非常重要。与大多数赤型生物碱不同,标题配合物中的羟基氧原子形成弱氢键或定义不明确的氢键。不能排除非常弱的分子内相互作用N1--H1...O12的贡献。这种“微量”相互作用可被视为表生物碱未质子化状态的遗迹。