Tri-Institutional Training Program in Chemical Biology, Memorial Sloan-Kettering Cancer Center, New York, New York, USA.
Nat Chem Biol. 2013 Jan;9(1):21-9. doi: 10.1038/nchembio.1130. Epub 2012 Nov 18.
Nature has exploited medium-sized 8- to 11-membered rings in a variety of natural products to address diverse and challenging biological targets. However, owing to the limitations of conventional cyclization-based approaches to medium-ring synthesis, these structures remain severely underrepresented in current probe and drug discovery efforts. To address this problem, we have established an alternative, biomimetic ring expansion approach to the diversity-oriented synthesis of medium-ring libraries. Oxidative dearomatization of bicyclic phenols affords polycyclic cyclohexadienones that undergo efficient ring expansion to form benzannulated medium-ring scaffolds found in natural products. The ring expansion reaction can be induced using three complementary reagents that avoid competing dienone-phenol rearrangements and is driven by rearomatization of a phenol ring adjacent to the scissile bond. Cheminformatic analysis of the resulting first-generation library confirms that these molecules occupy chemical space overlapping with medium-ring natural products and distinct from that of synthetic drugs and drug-like libraries.
大自然在各种天然产物中利用了中等大小的 8 到 11 元环来应对多样化和具有挑战性的生物靶点。然而,由于传统的中环合成中环化方法的局限性,这些结构在当前的探针和药物发现工作中仍然严重缺失。为了解决这个问题,我们建立了一种替代的、仿生的中环扩展方法,用于多样性导向的中环文库合成。双环苯酚的氧化去芳构化提供了多环环己二烯酮,这些酮可以有效地进行环扩张,形成天然产物中存在的苯并稠合的中环支架。环扩张反应可以使用三种互补的试剂来诱导,这些试剂避免了竞争的二烯酮-苯酚重排,并由与断裂键相邻的苯酚环的再芳构化驱动。对所得第一代文库的化学信息学分析证实,这些分子占据了与中环天然产物重叠的化学空间,与合成药物和类药文库明显不同。