Davis Chad E, Duffy Bryan C, Coates Robert M
Department of Chemistry, University of Illinois, 600 South Mathews Avenue, Urbana, Illinois 61801, USA.
J Org Chem. 2003 Sep 5;68(18):6935-43. doi: 10.1021/jo0343580.
A total synthesis of the novel silphinane sesquiterpene alcohol (+/-)-cameroonanol (6-OH) from bicyclic enone 10 was accomplished by conjugate addition of crotylsilane, photochemical hydrobromination, intramolecular alkylation, and hydride reduction. The stereoisomers cameroonan-7beta-ol (18-OH) and 9-epicamerooonanols (19 and 20) were separated from isomer mixtures and the 9-desmethylcameroonanols (21-OH and 22-OH) were obtained by similar means. Solvolysis of 6-OMs and 18-OMs effected skeletal rearrangements to (+/-)-silphiperfol-6-ene (5), (+/-)-prenopsanol (7) and (+/-)-nopsanol (8), and (+/-)-silphiperfolan-7beta-ol (9) in parallel with biogenetic schemes proposed for these naturally occurring sesquiterpenes. The nor analogues 21-OMs and 22-OMs underwent solvolytic rearrangments to a similar set of nor products. The increase in solvolytic rates for the 7beta-mesylates 18-OMs and 22-OMs in comparison to the 7alpha epimers is attributed to concerted antiperiplanar Wagner-Meerwein rearrangements to the prenopsyl and norprenopsyl carbocations. Further analysis of the kinetic data and comparisons with solvolysis rates for the structurally related silphin-1beta-yl and silphin-1alpha-yl mesylates (28 and 29) are presented. The rearrangements observed afford chemical precedent for the biogenetic pathways in the literature for these silphinane sesquiterpenes.
通过巴豆基硅烷的共轭加成、光化学氢溴化、分子内烷基化和氢化物还原反应,从双环烯酮10出发,完成了新型硅烷倍半萜醇(±)-喀麦隆醇(6-OH)的全合成。从异构体混合物中分离出立体异构体喀麦隆醇-7β-醇(18-OH)和9-表喀麦隆醇(19和20),并通过类似方法得到9-去甲基喀麦隆醇(21-OH和22-OH)。6-OMs和18-OMs的溶剂解反应导致骨架重排为(±)-硅叶烯-6-烯(5)、(±)-前诺普醇(7)和(±)-诺普醇(8),以及(±)-硅叶烷-7β-醇(9),这与针对这些天然存在的倍半萜提出的生源合成途径平行。去甲类似物21-OMs和22-OMs发生溶剂解重排,生成一组类似的去甲产物。与7α差向异构体相比,7β-甲磺酸酯18-OMs和22-OMs的溶剂解速率增加,这归因于协同的反式共平面瓦格纳-米尔温重排,生成前诺普基和去甲前诺普基碳正离子。本文还对动力学数据进行了进一步分析,并与结构相关的硅叶-1β-基和硅叶-1α-基甲磺酸酯(28和29)的溶剂解速率进行了比较。观察到的重排为文献中这些硅烷倍半萜的生源合成途径提供了化学先例。