Staretz M E, Hastie S B
Department of Chemistry, State University of New York, Binghamton 13902-6000.
J Med Chem. 1993 Mar 19;36(6):758-64. doi: 10.1021/jm00058a013.
A series of novel C-10 derivatives of colchicine have been prepared and evaluated for inhibition of in vitro microtubule assembly and of [3H]colchicine binding to tubulin. The C-10 substituent of colchicine was replaced by halogens, alkyl and alkoxy groups, and hydrogen. Many of these compounds are available by nucleophilic substitution of 10-fluoro-10-demethoxycolchicine (9) without concomitant formation of ring contraction products. Compound 9 is prepared by reaction of (diethylamino)sulfur trifluoride with colchiceine. Unlike most reactions of colchiceine, the colchicine rather than the isocolchicine regiosiomer is the predominant product of this reaction. It was found that modification of the C-10 substituent of colchicine had a relatively minor effect on the potency of the colchicinoids. The electronic nature of the substituent had no significant effect on the efficacy of the compound, indicating that hydrogen bonding or polar interactions between the C-10 substituent of colchicinoids and an amino acid in the colchicine binding site on tubulin are not present in the colchicine-tubulin complex. A decrease in activity was observed with increasing length of the alkyl chain bonded to the C-10 position, but potency was less affected when the alkyl groups were positioned in close proximity to the C-10 carbon of the tropone ring. It is concluded that the steric rather than the electronic properties of the C-10 substituent are the predominant determinants of activity in this series.
已制备了一系列秋水仙碱的新型C-10衍生物,并对其抑制体外微管组装以及[3H]秋水仙碱与微管蛋白结合的能力进行了评估。秋水仙碱的C-10取代基被卤素、烷基、烷氧基和氢取代。这些化合物中的许多可通过10-氟-10-去甲氧基秋水仙碱(9)的亲核取代反应获得,且不会同时形成环收缩产物。化合物9是通过二乙氨基三氟化硫与秋水仙碱反应制备的。与秋水仙碱的大多数反应不同,该反应的主要产物是秋水仙碱而非异秋水仙碱区域异构体。研究发现,秋水仙碱C-10取代基的修饰对秋水仙碱类化合物的效力影响相对较小。取代基的电子性质对化合物的功效没有显著影响,这表明秋水仙碱类化合物的C-10取代基与微管蛋白上秋水仙碱结合位点中的氨基酸之间不存在氢键或极性相互作用。随着连接到C-10位置的烷基链长度增加,活性降低,但当烷基靠近色酮环的C-10碳时,效力受影响较小。得出的结论是,该系列中C-10取代基的空间性质而非电子性质是活性的主要决定因素。