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DOI: 10.1055/s-0036-1589497
Cross-Metathesis/Intramolecular (Hetero-)Michael Addition: A Convenient Sequence for the Generation of Carbo- and Heterocycles
Supported by: Spanish Ministerio de Ciencia e Innovación (CTQ2013-43310-P)Supported by: Generalitat Valenciana (GV/PrometeoII/2014/073)
Publication History
Received: 27 January 2017
Accepted after revision: 01 March 2017
Publication Date:
04 May 2017 (online)
Abstract
The high stability and functional group compatibility of ruthenium carbene complexes confer them a great ability to catalyze domino processes. For this reason, the combination of metathesis reactions with additional transformations in a domino fashion has been exploited extensively, with the result of expanding the utility of ruthenium carbene complexes beyond that of just olefin metathesis. Among those domino processes, it is worth mentioning the sequence of cross-metathesis/intramolecular Michael addition, which allows for the generation of a wide variety of carbo- and heterocycles in a very simple manner, taking advantage of the benefits of domino reactions. Carbon-, oxygen- and nitrogen-centered nucleophiles are good partners in this protocol, the versatility of which has been illustrated with the synthesis of several biologically important compounds.
1 Introduction
2 Cross Metathesis/Intramolecular Aza-Michael Addition Sequences
3 Cross Metathesis/Intramolecular Oxa-Michael Addition Sequences
4 Cross Metathesis/Intramolecular Michael Addition Sequences
5 Conclusions and Outlook
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For recent reviews that exemplify the relevance of metathesis reactions, see:
For reviews on CM reactions including synthetic applications, see:
For reviews on domino reactions, see:
For reviews on tandem reactions involving a metathesis process, see:
For recent reviews on the aza-Michael reaction, see:
For some recent examples, see:
For selected examples, see:
For selected references, see:
For recent reviews on tandem protocols involving intramolecular Michael additions, see: