| Literature DB >> 28684990 |
Sushil K Maurya1,2, Rohit Rana1,2.
Abstract
An efficient, eco-compatible diversity-oriented synthesis (DOS) approach for the generation of library of sugar embedded macrocyclic compounds with various ring size containing 1,2,3-triazole has been developed. This concise strategy involves the iterative use of readily available sugar-derived alkyne/azide-alkene building blocks coupled through copper catalyzed azide-alkyne cycloaddition (CuAAC) reaction followed by pairing of the linear cyclo-adduct using greener reaction conditions. The eco-compatibility, mild reaction conditions, greener solvents, easy purification and avoidance of hazards and toxic solvents are advantages of this protocol to access this important structural class. The diversity of the macrocycles synthesized (in total we have synthesized 13 macrocycles) using a set of standard reaction protocols demonstrate the potential of the new eco-compatible approach for the macrocyclic library generation.Entities:
Keywords: carbohydrate; click chemistry; diversity-oriented synthesis; macrocycles; ring-closing metathesis
Year: 2017 PMID: 28684990 PMCID: PMC5480360 DOI: 10.3762/bjoc.13.110
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Figure 1Build-couple-pair (B/C/P) strategy for macrocycles.
Figure 2Different building blocks used for DOS.
Scheme 1Cycloaddition reaction of alkyne-azide building block.
Optimization of the reaction conditions for the cycloaddition.
| Entry | Solvent | Base | Catalyst (CuI, mol %) | Temperature | Time (hours) | Yield %a |
| 1 | ACN | TEA | 5 | ambient | 2 | 65 |
| 2 | ACN | DIPEA | 5 | ambient | 2 | 71 |
| 3 | H2O | – | – | ambient | 24 | 6b (77% selectivity for |
| 4 | H2O | – | – | 70 °C | 24 | 33b (63% selectivity for |
| 5 | H2O | – | 5 | ambient | 24 | 45 |
| 6 | H2O | DIPEA | 5 | ambient | 24 | 35 |
| 8 | H2O | DIPEA | 5 | 70 °C | 2 | 48 |
aIsolated yield after column chromatography; bconversion and cproduct selectivity was measured by 1H NMR.
Copper catalyzed azide-alkyne cycloaddition.
| Alkyne | Azide | Cycloadducta | Yield % |
| 95 | |||
| 94 | |||
| 75 | |||
| 90 | |||
| 76 | |||
| 78 | |||
| 92 | |||
| 91 | |||
| 85 | |||
| 87 | |||
| 95 | |||
| 77 | |||
| 67 | |||
aMethod: CuI (5 mol %), water, 70 °C, 2 h.
Application of ring-closing metathesis reactions in the synthesis of macrocycles.
| Substrate | Methoda (mol %; time; yield) | RCM product |
| A (5; 2 h; 63%) | ||
| A (5; 2 h; 85%) | ||
| A (5; 2 h; 88%) | ||
| A (5; 2 h; 70%) | ||
| A (5+5; 3 h; 88%) | ||
| A (5+3; 3 h; 83%) | ||
| A (5; 2 h; 77%) | ||
| A (5+3; 3 h; 82%) | ||
| A (5; 2 h; 95%) | ||
| A (5; 2 h; 84%) | ||
| A (5; 2 h; 81%) | ||
| A (5; 2 h; 53%) | ||
| A (5; 2 h; 40%) | ||
aMethods: A: Grubbs second-generation catalyst, CH2Cl2, 50 °C; B: Grubbs second-generation catalyst, ethyl acetate, 75 °C.
Feasibility studies of cycloaddition and RCM reaction in single and two-step protocol.
| RCM product | Two-step protocola | Direct protocola | ||||||
| CuAAC Yield (%) | Grubbs cat. (mol %) | RCM yield (%) | Combined yield (%) | Grubbs cat. (mol %) | Yield (%) | |||
| 76 | (5+3) | 40 | 31 | (5+5) | 32 | |||
| 78 | 5 | 39 | 30 | 5 | 29 | |||
| 92 | (5+3) | 92 | 85 | 5 | 49 | |||
| 91 | 5 | 92 | 84 | 5 | 80 | |||
aIsolated yield after column chromatography.
Scheme 2Acetylation of macrocycle 4m.