Department of Chemistry, The Scripps Research Institute, 10550 North Torrey Pines Road, La Jolla, California 92037, USA.
J Am Chem Soc. 2010 May 26;132(20):7153-76. doi: 10.1021/ja100742b.
Having determined through total synthesis that the originally assigned structure of vannusals A and B were incorrect, we set out to uncover the identity of the true structures of these novel marine natural products. Our search was based on intelligence gathered by NMR spectroscopy and chemical synthesis and took us through the total synthesis of eight diastereomeric vannusal B structures [2, d-2, 3, d-3, 4, d-4, 5, and d-5, Figure 2]. The true structures of vannusals A and B were finally determined to be d-5 and d-1, respectively. Their total synthesis was based on a highly convergent and efficient strategy that involved fragments vinyl iodide (-)-6 and aldehyde (+/-)-94, and featured a stereoselective lithium-mediated coupling reaction and a samarium-induced cyclization process that forged the final ring of the carbon framework. The synthetic strategies and technologies developed in these investigations expand the scope of chemical synthesis and render these compounds readily available for biological evaluation, while the NMR spectroscopic insights gained should prove useful in future structural determination endeavors.
通过全合成确定,vannusals A 和 B 的最初结构是不正确的,我们开始揭示这些新型海洋天然产物的真实结构。我们的研究基于 NMR 光谱和化学合成收集的情报,并通过全合成八种非对映异构体 vannusal B 结构[2,d-2,3,d-3,4,d-4,5 和 d-5,图 2]进行。vannusals A 和 B 的真实结构最终分别确定为 d-5 和 d-1。它们的全合成基于高度收敛和高效的策略,涉及片段乙烯基碘化物(-)-6 和醛(+/ -)-94,并具有立体选择性锂介导的偶联反应和钐诱导的环化过程,形成了碳框架的最终环。这些研究中开发的合成策略和技术扩展了化学合成的范围,使这些化合物易于进行生物评价,而获得的 NMR 光谱学见解应在未来的结构确定工作中证明是有用的。