Department of Medicinal Chemistry, School of Pharmacy, Second Military Medical University, 325 Guohe Road, Shanghai 200433, PR China.
ACS Comb Sci. 2013 Jun 10;15(6):298-308. doi: 10.1021/co400022r. Epub 2013 May 8.
In this article, we present a new approach by merging two powerful synthetic tactics, divergent synthesis and cascade organocatalysis, to create a divergent cascade organocatalysis strategy for the facile construction of new "privileged" substructure-based DOS (pDOS) library. As demonstrated, notably 5 distinct molecular architectures are produced facilely from readily available simple synthons thiazolidinedione and its analogues and α,β-unsaturated aldehydes in 1-3 steps with the powerful strategy. The beauty of the chemistry is highlighted by the efficient formation of structurally new and diverse products from structurally close reactants under the similar reaction conditions. Notably, structurally diverse spiro-thiazolidinediones and -rhodanines are produced from organocatalytic enantioselective 3-component Michael-Michael-aldol cascade reactions of respective thiazolidinediones and rhodanines with enals. Nevertheless, under the similar reaction conditions, reactions of isorhodanine via a Michael-cyclization cascade lead to structurally different fused thiopyranoid scaffolds. This strategy significantly minimizes time- and cost-consuming synthetic works. Furthermore, these molecules possess high structural complexity and functional, stereochemical, and skeletal diversity with similarity to natural scaffolds. In the preliminary biological studies of these molecules, compounds 4f, 8a, and 10a exhibit inhibitory activity against the human breast cancer cells, while compounds 8a, 9a, and 9b display good antifungal activities against Candida albicans and Cryptococcus neoformans. Notably, their structures are different from clinically used triazole antifungal drugs. Therefore, they could serve as good lead compounds for the development of new generation of antifungal agents.
在本文中,我们提出了一种新的方法,即将两种强大的合成策略——发散合成和级联有机催化——结合起来,创建一种用于轻松构建新的基于“特权”亚结构的 DOS(pDOS)库的发散级联有机催化策略。正如所展示的,通过这种强大的策略,可以从易得的简单原料噻唑烷二酮及其类似物和α,β-不饱和醛出发,在 1-3 步中轻松制备 5 种不同的分子结构。该化学的美妙之处在于,在相似的反应条件下,从结构相近的反应物中高效地形成结构新颖且多样的产物。值得注意的是,通过相应的噻唑烷二酮和硫代罗丹宁的有机催化对映选择性 3 组分迈克尔-迈克尔-羟醛缩合级联反应,生成了结构多样的螺环噻唑烷二酮和螺环罗丹宁。然而,在相似的反应条件下,异硫代罗丹宁通过迈克尔环化级联反应得到结构不同的稠合噻喃骨架。该策略大大减少了耗时和高成本的合成工作。此外,这些分子具有高结构复杂性和功能、立体化学和骨架多样性,与天然支架相似。在这些分子的初步生物学研究中,化合物 4f、8a 和 10a 对人乳腺癌细胞表现出抑制活性,而化合物 8a、9a 和 9b 对白色念珠菌和新生隐球菌表现出良好的抗真菌活性。值得注意的是,它们的结构与临床上使用的三唑类抗真菌药物不同。因此,它们可以作为开发新一代抗真菌药物的良好先导化合物。