| Literature DB >> 29861913 |
Xuesong Wu1, Mian Wang2, Guangwu Zhang1, Yan Zhao1, Jianyi Wang2, Haibo Ge1.
Abstract
Transition metal-catalyzed cross dehydrogenative coupling is an important tool for functionalization of the α Csp3-H bond of amines. Among this reaction category, copper-catalyzed selective C-C bond formation under atmospheric O2 is of considerable research interest and significant progress has been achieved in recent years. In comparison, development of the intramolecular version of this transformation is still in its infancy. Furthermore, diastereoselective cyclization with this transformation has not been achieved. Here, we describe the highly diastereoselective intramolecular dehydrogenative cyclization of N,N-disubstituted hydrazones by a copper-catalyzed sp3 C-H bond functionalization process. The reaction protocol utilizes O2 as the oxidant and shows great functional group compatibility. Computational studies suggest that a 5-center/6-electron disrotatory cyclization mechanism is probably involved in the process for controlling the diastereoselectivity. This work represents the first example of a copper-catalyzed, direct intramolecular diastereoselective coupling reaction via an iminium ion intermediate. Additionally, it provides an environmentally friendly and atom efficient approach to access substituted pyrazolines, an important structural unit in many biologically active compounds.Entities:
Year: 2015 PMID: 29861913 PMCID: PMC5950562 DOI: 10.1039/c5sc01736j
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Optimization of reaction conditions
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| Entry | Cu source (mol%) | Base (equiv.) | Additive (equiv.) | Solvent | Yield | d.r. | |
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| 1 | Cu(OTf)2 (10) | KOAc (1.0) | — | NMP | <5 | — | — |
| 2 | Cu(OTf)2 (10) | DBU (1.0) | — | NMP | <5 | — | — |
| 3 | Cu(OTf)2 (10) | KOAc (1.0) | KI (1.0) | NMP | 23 | — | 6.8 : 1 |
| 4 | Cu(OTf)2 (10) | DBU (1.0) | KI (1.0) | NMP | 10 | — | – |
| 5 | Cu(OTf)2 (10) | KOAc (0.5)/DBU (0.5) | KI (1.0) | NMP | 27 | — | 6.3 : 1 |
| 6 | Cu(OTf)2 (10) | KOAc (0.5)/DBU (0.5) | — | NMP | <5 | — | — |
| 7 | Cu(OTf)2 (10) | — | KI (1.0) | NMP | <5 | — | — |
| 8 | Cu(OTf)2 (10) | KOAc (0.5)/DBU (0.5) | KI (1.0) | NMP/ | 45 | 3 | 6.0 : 1 |
| 9 | Cu(OTf)2 (10) | KOAc (0.5)/DBU (0.5) | KI (1.0) | NMP/ | 81 | 4 | 6.1 : 1 |
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| 11 | Cu(OTf)2 (10) | KOAc (0.5)/DBN (0.5) | KI (1.0) |
| 43 | 3 | 5.1 : 1 |
| 12 | — | KOAc (0.5)/DBN (0.5) | KI (1.0) | NMP/ | 0 | — | — |
| 13 | Cu(TFA)2 (10) | KOAc (0.5)/DBN (0.5) | KI (1.0) | NMP/ | 67 | 5 | 7.4 : 1 |
| 14 | Cu(OAc)2 (10) | KOAc (0.5)/DBN (0.5) | KI (1.0) | NMP/ | 73 | 5 | 6.5 : 1 |
| 15 | CuI (10) | KOAc (0.5)/DBN (0.5) | KI (1.0) | NMP/ | 62 | 4 | 6.3 : 1 |
| 16 | CuBr (10) | KOAc (0.5)/DBN (0.5) | KI (1.0) | NMP/ | 60 | 4 | 6.3 : 1 |
| 17 | (CuOTf)2Py (5) | KOAc (0.5)/DBN (0.5) | KI (1.0) | NMP/ | 82 | 5 | 6.7 : 1 |
Reaction conditions: 1a (0.3 mmol), Cu source, base, additive, O2 (1 atm), 2 mL of solvent, 100 °C, 4 h.
Yields and conversions are based on 1a, determined by GC/MS using diphenylketone as the internal standard.
d.r. (anti : syn): determined by 1H NMR spectroscopy.
2 : 3 (v/v).
12 h.
Isolated yields.
Scope of hydrazones , ,
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Reaction conditions: 1 (0.3 mmol), Cu(OTf)2 (10 mol%), KOAc (0.5 equiv.), DBN (0.5 equiv.), KI (1.0 equiv.), O2 (1 atm), 2 mL co-solvent NMP and AmOH (NMP/AmOH = 2 : 3, v/v), 100 °C, 3–14 h.
Isolated yield.
d.r. was determined by 1H NMR spectroscopy.
Scope of 1,2,3,4-tetrahydroisoquinolines , ,
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Reaction conditions: 4 (0.3 mmol), Cu(OTf)2 (10 mol%), KOAc (0.5 equiv.), DBU (0.5 equiv.), KI (1.0 equiv.), O2 (1 atm), 2 mL co-solvent NMP and AmOH (NMP/AmOH = 2 : 3, v/v), 100 °C, 3.5–4.5 h.
Isolated yield.
d.r. (syn : anti) was determined by 1H NMR spectroscopy.
Fig. 1NOESY and relative configuration of 5a.
Scope of the imine moiety , ,
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Reaction conditions: (0.3 mmol), Cu(OTf)2 (10 mol%), KOAc (0.5 equiv.), DBU (0.5 equiv.), KI (1.0 equiv.), O2 (1 atm), 2 mL co-solvent NMP and AmOH (NMP/AmOH = 2 : 3, v/v), 100 °C, 1–20 h.
Isolated yield.
d.r. was determined by 1H NMR spectroscopy.
Scheme 1Proposed reaction mechanism.
Fig. 2Free energy profiles of the reaction generating 5a in the gas phase. Free energies in the solution phase are given in parentheses.
Fig. 3HOMOs of TS1a and TS1b generating 5a.
Fig. 4Free energy profiles of the reaction generating 2a in the gas phase. Free energies in the solution phase are given in parentheses.
Fig. 5HOMOs of TS1a, TS1b, TS2a and TS2b generating 2a.
Scheme 2Interpretation of stereoselectivity of 2f, 2p, and 5ab.