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受生物启发的 (-)- 盐孢菌素 A、(-)- 同型盐孢菌素 A 及其通过亲核试剂促进的双环化反应获得的衍生物的全合成及对人蛋白酶体的抑制活性。

Bioinspired total synthesis and human proteasome inhibitory activity of (-)-salinosporamide A, (-)-homosalinosporamide A, and derivatives obtained via organonucleophile promoted bis-cyclizations.

机构信息

Department of Chemistry, Texas A&M University, P.O. Box 30012, College Station, Texas 77842-3012, USA.

出版信息

J Org Chem. 2011 Jan 7;76(1):2-12. doi: 10.1021/jo101638r. Epub 2010 Nov 3.

Abstract

A full account of concise, enantioselective syntheses of the anticancer agent (-)-salinosporamide A and derivatives, including (-)-homosalinosporamide, that was inspired by biosynthetic considerations is described. The brevity of the synthetic strategy stems from a key bis-cyclization of a β-keto tertiary amide, which retains optical purity enabled by A(1,3)-strain rendering slow epimerization relative to the rate of bis-cyclization. Optimization studies of the key bis-cyclization, enabled through byproduct isolation and characterization, are described that ultimately allowed for a gram scale synthesis of a versatile bicyclic core structure with a high degree of stereoretention. An optimized procedure for zincate generation by the method of Knochel, generally useful for the synthesis of salino A derivatives, led to dramatic improvements in side-chain attachment and a novel diastereomer of salino A. The versatility of the described strategy is demonstrated by the synthesis of designed derivatives including (-)-homosalinosporamide A. Inhibition of the human 20S and 26S proteasome by these derivatives using an enzymatic assay are also reported. The described total synthesis of salino A raises interesting questions regarding how biosynthetic enzymes leading to the salinosporamides proceeding via optically active β-keto secondary amides, are able to maintain the stereochemical integrity at the labile C2 stereocenter or if a dynamic kinetic resolution is operative.

摘要

本文描述了受生物合成考虑启发,对抗癌剂(-)-salinosporamide A 及其衍生物(包括(-)-homosalinosporamide)进行简洁、对映选择性合成的完整描述。该合成策略的简洁性源于β-酮叔酰胺的关键双环化反应,该反应通过 A(1,3)-应变保持光学纯度,使其相对于双环化反应的速率缓慢外消旋化。通过副产物的分离和表征,对关键的双环化反应进行了优化研究,最终允许在克级规模上合成具有高度立体保留的多功能双环核心结构。通过 Knochel 方法生成锌酸盐的优化程序,通常对 salino A 衍生物的合成有用,导致侧链连接和 salino A 的新型非对映异构体的显著改善。所描述的策略的通用性通过合成设计衍生物包括(-)-homosalinosporamide A 得到了证明。还报道了这些衍生物对人 20S 和 26S 蛋白酶体的抑制作用,使用酶促测定法进行了测定。salino A 的全合成提出了一个有趣的问题,即导致 salinosporamides 经过光学活性β-酮仲酰胺的生物合成酶如何能够在不稳定的 C2 立体中心保持立体化学完整性,或者是否存在动态动力学分辨率。

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