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Synthesis 2023; 55(15): 2333-2342
DOI: 10.1055/a-2022-1809
DOI: 10.1055/a-2022-1809
paper
Special Issue dedicated to Prof. David A. Evans
Synthesis of the CDF Ring System of Hexacyclinic Acid
The University of Glasgow is acknowledged for financial support. The Engineering and Physical Sciences Research Council (EPSRC) provided a doctoral training allocation to A.A. (EP/K503058/1).
Abstract
Diverse approaches to prepare the nine-membered ring precursor of the DEF fragment of hexacyclinic acid are described, culminating in the synthesis of the CDF ring system of this natural product. The key steps are a Michael addition/elimination sequence and an original intramolecular Tsuji–Trost reaction of an enol with an allylic alcohol.
Key words
hexacyclinic acid - intramolecular Tsuji–Trost reaction - Crimmins aldol - relay ring-closing metathesis - natural productsSupporting Information
- Supporting information for this article is available online at https://doi.org/10.1055/a-2022-1809.
- Supporting Information
Publikationsverlauf
Eingereicht: 18. November 2022
Angenommen nach Revision: 30. Januar 2023
Accepted Manuscript online:
30. Januar 2023
Artikel online veröffentlicht:
02. März 2023
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References
- 1 New address: A. Audic, Syneos Health, 2500 rue Einstein, Québec, QC, Canada.
- 2 Höfs R, Walker M, Zeeck A. Angew. Chem. Int. Ed. 2000; 39: 3258
- 3 Kobayakawa Y, Mori Y, Okajima H, Terada Y, Nakada M. Org. Lett. 2012; 14: 2086
- 4a Stellfeld T, Bhatt U, Kalesse M. Org. Lett. 2004; 6: 3889
- 4b Stelmakh A, Stellfeld T, Kalesse M. Org. Lett. 2006; 8: 3485
- 4c Clarke PA, Cridland AP. Org. Lett. 2005; 7: 4221
- 4d Clarke PA, Cridland AP, Rolla GA, Iqbal M, Bainbridge NP, Whitwood AC, Wilson C. J. Org. Chem. 2009; 74: 7812
- 4e James P, Felpin F.-X, Landais Y, Schenk K. J. Org. Chem. 2005; 70: 7985
- 4f Toueg J, Prunet J. Org. Lett. 2008; 10: 45
- 4g Audic A, Oriez R, Prunet J. Tetrahedron 2021; 79: 131843
- 5a Clarke PA, Grist M, Ebden M, Wilson C. Chem. Commun. 2003; 1560
- 5b Clarke PA, Grist M, Ebden M, Wilson C, Blake AJ. Tetrahedron 2005; 61: 353
- 5c Iqbal M, Black RJ. G, Winn J, Reeder AT, Blake AJ, Clarke PA. Org. Biomol. Chem. 2011; 9: 5062
- 6 Crimmins MT, Christie HM, Hughes CO. Org. Synth. 2011; 88: 364
-
7
Larsen MA,
Hennessy ET,
Deem MC,
Lam Y.-h,
Sauri J,
Sather AC.
J. Am. Chem. Soc. 2020; 142: 726
- 8 Crimmins MT, Knight JD, Williams PS, Zhang Y. Org. Lett. 2014; 16: 2458
- 9 Kowalski CJ, Weber AE, Fields KW. J. Org. Chem. 1982; 47: 5088
- 10 Liniger M, Neuhaus C, Hofmann T, Fransioli-Ignazio L, Jordi M, Drueckes P, Trappe J, Fabbro D, Altmann K.-H. ACS Med. Chem. Lett. 2011; 2: 22
- 11 Ito H, Takenaka Y, Fukunishi S, Iguchi K. Synthesis 2005; 3035
- 12 Cornil J, Gonnard L, Bensoussan C, Serra-Muns A, Gnamm C, Commandeur C, Commandeur M, Reymond S, Guerinot A, Cossy J. Acc. Chem. Res. 2015; 48: 761
- 13 Aponick A, Li CY, Biannic B. Org. Lett. 2008; 10: 669
- 14 Kawai N, Lagrange J.-M, Uenishi J. Eur. J. Org. Chem. 2007; 2808
- 15 Evans DA, Starr JT. J. Am. Chem. Soc. 2003; 125: 13531
- 16 Mathieson M. PhD Thesis. University of Glasgow; UK: 2014
- 17 Wasnaire P, de Merode T, Markó IE. Chem. Commun. 2007; 4755