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C–N Ring Construction: The Glorius Synthesis of ent-Monomorine

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Ryan Gilmour of the Westfälische Wilhelms-Universität Münster employed (Chem. Eur. J. 2014, 20, 794) an organocatalyst to direct the enantioselective aziridination of 1 to 2. Vanessa Kar-Yan Lo and Chi-Ming Che of Hong Kong University devised (Angew. Chem. Int. Ed. 2014, 53, 2982) a Ru catalyst for the enantioselective aziridi­nation (not illustrated) of terminal alkenes. Shu-Li You of the Shanghai Institute of Organic Chemistry and Aiwen Lei of Wuhan University described (Angew. Chem. Int. Ed. 2014, 53, 2443) the Pd-mediated carbonylation of 3 to the β-lactam 4. Professor You reported (J. Am. Chem. Soc. 2014, 136, 6590) the enantioselective allylation of a pyrrole 5 with 6 to give the imine 7. Maria-Paz Cabal and Carlos Valdés of the University of Oviedo showed (Eur. J. Org. Chem. 2014, 1672) that the cycliza­tion of 8 to 9 proceeded with predictable high diastereocontrol. In one pot, Darren J. Dixon of the University of Oxford combined (ACS Catal. 2014, 4, 634) 10 and 11 to give 12 in high ee. The addition of 13 to 14 to give 15 described (Nature Chem. 2014, 6, 47) by Takashi Ooi of Nagoya University set two adjacent quaternary centers with control of both relative and absolute configuration. Scott E. Denmark of the University of Illinois devised (J. Am. Chem. Soc. 2014, 136, 8915) a catalyst for the enantioselective electrophilic cyclization of 16 to 17 with control of sidechain stereochemistry. Using commercial acetone cyanohydrin 19, Christian V. Stevens of Ghent University cyclized (Eur. J. Org. Chem. 2014, 1296) 18 to the nitrile 20. George W. J. Fleet, also of the University of Oxford, used (Eur. J. Org. Chem. 2014, 2053) similar conditions to convert the sugar-derived acetonide 21 into 22. Michael B. Tropak of the University of Toronto and Dilip P. Dhavale of the University of Pune showed (J. Org. Chem. 2014, 79, 4398) that the nitrone derived from 21 added to an alkene 23 with high facial selectivity, leading to the piperidine 24. In the course of a synthesis of syringolin A, Satoshi Ichikawa of Hokkaido University effected (Angew. Chem. Int. Ed. 2014, 53, 4836) intramolecular Ugi three-component coupling of the isonitrile 25, the acid 26, and the amine 27, leading to the macrolactam 28.
Oxford University Press
Title: C–N Ring Construction: The Glorius Synthesis of ent-Monomorine
Description:
Ryan Gilmour of the Westfälische Wilhelms-Universität Münster employed (Chem.
Eur.
J.
2014, 20, 794) an organocatalyst to direct the enantioselective aziridination of 1 to 2.
Vanessa Kar-Yan Lo and Chi-Ming Che of Hong Kong University devised (Angew.
Chem.
Int.
Ed.
2014, 53, 2982) a Ru catalyst for the enantioselective aziridi­nation (not illustrated) of terminal alkenes.
Shu-Li You of the Shanghai Institute of Organic Chemistry and Aiwen Lei of Wuhan University described (Angew.
Chem.
Int.
Ed.
2014, 53, 2443) the Pd-mediated carbonylation of 3 to the β-lactam 4.
Professor You reported (J.
Am.
Chem.
Soc.
2014, 136, 6590) the enantioselective allylation of a pyrrole 5 with 6 to give the imine 7.
Maria-Paz Cabal and Carlos Valdés of the University of Oviedo showed (Eur.
J.
Org.
Chem.
2014, 1672) that the cycliza­tion of 8 to 9 proceeded with predictable high diastereocontrol.
In one pot, Darren J.
Dixon of the University of Oxford combined (ACS Catal.
2014, 4, 634) 10 and 11 to give 12 in high ee.
The addition of 13 to 14 to give 15 described (Nature Chem.
2014, 6, 47) by Takashi Ooi of Nagoya University set two adjacent quaternary centers with control of both relative and absolute configuration.
Scott E.
Denmark of the University of Illinois devised (J.
Am.
Chem.
Soc.
2014, 136, 8915) a catalyst for the enantioselective electrophilic cyclization of 16 to 17 with control of sidechain stereochemistry.
Using commercial acetone cyanohydrin 19, Christian V.
Stevens of Ghent University cyclized (Eur.
J.
Org.
Chem.
2014, 1296) 18 to the nitrile 20.
George W.
J.
Fleet, also of the University of Oxford, used (Eur.
J.
Org.
Chem.
2014, 2053) similar conditions to convert the sugar-derived acetonide 21 into 22.
Michael B.
Tropak of the University of Toronto and Dilip P.
Dhavale of the University of Pune showed (J.
Org.
Chem.
2014, 79, 4398) that the nitrone derived from 21 added to an alkene 23 with high facial selectivity, leading to the piperidine 24.
In the course of a synthesis of syringolin A, Satoshi Ichikawa of Hokkaido University effected (Angew.
Chem.
Int.
Ed.
2014, 53, 4836) intramolecular Ugi three-component coupling of the isonitrile 25, the acid 26, and the amine 27, leading to the macrolactam 28.

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