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Updated: Jan 17, 2026

Preparation of Stable Bicyclic Aziridinium Ions and Their Ring-Opening for the Synthesis of Azaheterocycles
Published on: August 22, 2018
Late-Stage Sequential Functionalization of Arenes and Drug Molecules to Access Biaryls and Azahelicenes
Lun Li1, Xin Zhou1, Hangyuan Zhang1
1Key Laboratory of Medicinal Chemistry for Natural Resource, Ministry of Education; Yunnan Provincial Center for Research & Development of Natural Products; School of Pharmacy; School of Chemical Science and Technology, Yunnan University, Kunming 650500, P. R. China.
Abstract:
Late-stage functionalization of complex substrates represents an important strategy for creating a diverse molecule library without the need for de novo synthesis. Although conventional cross-couplings have developed as a practical access to many (hetero)biaryls, late-stage directed arylation provides a more appealing and cost-effective platform to make these scaffolds. Given the economic and environmental benefits associated with sequential metal catalysis, the selective construction of polyfunctional (hetero)biaryl analogues by complementary multicatalytic sequential C-H halogenation/arylation/cross-coupling sequences is described, which starts from readily accessible (hetero)arenes and takes advantage of inherently present functional groups to guide the multiple late-stage functionalizations. The approach is compatible with sensitive polar and delicate functionalities to produce a diverse range of products that would be difficult to access by traditional methods. In particular, the application of this method has been demonstrated in the late-stage functionalization of many structurally complex natural products and drug/druglike molecules, including the bioactive compounds vismodegib, PH089, and diazepam, as well as in the streamlined synthesis of challenging azahelicenes.
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