| Literature DB >> 25288871 |
Tehetena Mesganaw1, Jonathan A Ellman1.
Abstract
A Rh-catalyzed C-H bond activation/alkenylation/electrocyclization cascade reaction provides diverse 1,2-dihydropyridines from simple and readily available precursors. The reaction can be carried out at low (<1%) Rh-catalyst loadings, and the use of the robust, air-stable Rh precatalyst, [RhCl(cod)]2, enables the cascade reaction to be easily performed on the benchtop. The 1,2-dihydropyridine products serve as extremely versatile synthetic intermediates for further elaboration often without isolation. The addition of electrophiles under kinetic or thermodynamic conditions provides a wide range of iminiums. Subsequent addition of a nucleophile then generates a diverse array of differently substituted piperidine products. Additionally, [3 + 2] and [4 + 2] cycloadditions of the 1,2-dihydropyridine intermediate provides access to bridged bicyclic structures such as tropanes and isoquinuclidines. These concise reaction sequences enable the formation of highly substituted piperidines in synthetically useful yields with excellent diastereoselectivity.Entities:
Year: 2014 PMID: 25288871 PMCID: PMC4183667 DOI: 10.1021/op500224x
Source DB: PubMed Journal: Org Process Res Dev ISSN: 1083-6160 Impact factor: 3.317
Figure 1Representative drugs that incorporate the piperidine motif.
Figure 2Rh-catalyzed activation/alkenylation/electrocyclization.
Figure 3Piperidines generated via kinetic and thermodynamic iminiums.
Rh-catalyzed cyclization with kinetic protonation and reduction
Alkyne regioselectivity 2:1; combined yield for separate regioisomers.
Combined yield for regioisomerically pure diastereomeric mixture.
Scheme 1Preparative scale synthesis of tetrahydropyridines
Rh-catalyzed cyclization using silyl alkynes with kinetic protonation and reduction
Rh cyclization performed at 65 °C for 16 h and then at 125 °C for 12 h.
Reduction performed with Me4NBH(OAc)3 and HF-pyr in THF at 0 → 23 °C.
Reduction performed with HF-pyr and (PhO)2PO2H in THF at 0 → 23 °C.
Scheme 2Preparative scale synthesis of tetrahydropyridines using a silyl alkyne
Kinetic protonation and carbon nucleophile addition products
Tetrahydropyridines generated via kinetic iminiums from carbon electrophile addition and subsequent reduction
Benzylation occurred with BnBr (2.5 equiv) and ZrCl4 (1.7 equiv) with warming to 23 °C.
Reduction was performed by addition of K(i-PrO)3BH in THF at −78 °C with warming to 23 °C.
Reduction was performed by addition of LiEt3BH in THF at 78 °C with warming to 23 °C.
Addition of carbon electrophiles and carbon nucleophiles under kinetic control
Thermodynamic protonation and reduction tetrahydropyridine products
[Rh] step run in THF, and the reaction is carried out as a onepot procedure.
[Rh] step run in THF, and reduction conducted using Li[i-Bu3BH].
Thermodynamic protonation with carbon nucleophile addition products
Diels–Alder cycloaddition of 1,2-dihydropyridines
ZnCl2 (1.1 equiv), 0 °C.
N-Phenylmaleimide (1.05 equiv), 23 °C.
Neat, 105 °C.
N-Phenylmaleimide (1.05 equiv), 50 °C.
Tropane synthesis via azomethine ylides
Figure 4Synthesis of cyclopropyl pyrrolidines.