| Literature DB >> 29259672 |
Sergii V Melnykov1, Andrii S Pataman2, Yurii V Dmytriv2,3, Svitlana V Shishkina4,5, Mykhailo V Vovk1, Volodymyr A Sukach1.
Abstract
Background: Due to the high reactivity towards various C-nucleophiles, trifluoromethylketimines are known to be useful reagents for the synthesis of α-trifluoromethylated amine derivatives. However, decarboxylative reactions with malonic acid and its mono(thio)esters have been poorly investigated so far despite the potential to become a convenient route to β-trifluoromethyl-β-amino acid derivatives and to their partially saturated heterocyclic analogues.Entities:
Keywords: Michael- and Mannich-type decarboxylative addition; ketimines; malonic acid; pyrimidin-2(1H)-ones; regioselectivity; trifluoromethyl group
Year: 2017 PMID: 29259672 PMCID: PMC5727768 DOI: 10.3762/bjoc.13.259
Source DB: PubMed Journal: Beilstein J Org Chem ISSN: 1860-5397 Impact factor: 2.883
Figure 1Summary of the present study.
Screening of the reaction conditions for organic base-catalyzed malonic acid addition to 1-methyl-4-trifluoromethylpyrimidin-2(1H)-one (2a).
| entry | base (1 equiv) | solvent | temp. (°C) | conv. (%) | product (isolated yield, %) | |
| 1 | TEA | toluene | 80 | 84 | 92:8 | |
| 2 | TEA | THF | 65 | 97 | 13:87 | |
| 3 | TEA | DMSO | 80 | 94 | 1:99 | |
| 4 | TEA | MeOH | 63 | 46 | 21:79 | – |
| 5 | DIEA | toluene | 80 | 83 | 88:12 | |
| 6 | DBU | toluene | 80 | 80 | 85:15 | – |
| 7 | quinine | toluene | 80 | 81 | 47:53a | – |
| 8 | toluene | 80 | 62 | 34:66a | – | |
aThe two regioisomers were racemic.
Regioselective decarboxylative addition of malonic acid to 4-trifluoromethylpyrimidin-2(1H)-ones 2b–m and preparation of N1(3)-unsubstituted compounds 4j and 5n,o.
| entry | comp. | R1 | R2 | isol. product | yield (%) |
| 1 | H | Et | 62 | ||
| 2 | H | Et | 58 | ||
| 3 | H | 67 | |||
| 4 | H | 55 | |||
| 5 | H | Me2CHCH2 | 57 | ||
| 6 | H | Me2CHCH2 | 51 | ||
| 7 | H | MeOCH2CH2 | 59 | ||
| 8 | H | MeOCH2CH2 | 64 | ||
| 9 | H | CH2=CHCH2 | 73 | ||
| 10 | H | CH2=CHCH2 | 82 | ||
| 11 | H | Bn | 68 | ||
| 12 | H | Bn | 89 | ||
| 13 | H | 4-FC6H4CH2 | 60 | ||
| 14 | H | 4-FC6H4CH2 | 80 | ||
| 15 | H | 4-MeOC6H4CH2 | 65 | ||
| 16 | H | 4-MeOC6H4CH2 | 82 | ||
| 17 | CO2Me | 4-FC6H4CH2 | 75 | ||
| 18 | CO2Me | 4-MeOC6H4CH2 | 83 | ||
| 19 | CO2Me | 4-ClC6H4 | 81 | ||
| 20 | CO2Me | 4-MeOC6H4 | 81 | ||
Screening of the reaction conditions for organic base-catalyzed malonic acid monophenyl ester (1a) addition to 1-methyl-4-trifluoromethylpyrimidin-2(1H)-one (2a).
| entry | solvent | base | temp. (°C) | time (h) | conv. | yield |
| 1 | toluene | TEA | 80 | 4 | 98 | 81 |
| 2 | toluene | DIEA | 80 | 4 | 96 | 77 |
| 3 | toluene | DBU | 80 | 4 | 10 | – |
| 4 | toluene | quinine | 80 | 4 | 92 | 68b |
| 5 | toluene | QT | 80 | 4 | 78 | 55b |
| 6 | CH2Cl2 | TEA | 40 | 8 | 94 | 75 |
| 7 | THF | TEA | 66 | 8 | 90 | 74 |
| 8 | dioxane | TEA | 80 | 4 | 91 | 80 |
| 9 | DMSO | TEA | 80 | 4 | 93 | 81 |
aThe regioisomeric product 7a was formed in a negligible amount in all cases; bRacemic product.
Regioselective decarboxylative addition of malonic acid monophenyl ester (1a) to 4-trifluoromethylpyrimidin-2(1H)-ones 2b–m and preparation of N3-unsubstituted compounds 6n,o.
| entry | comp. | R1 | R2 | time (h) | conv. | yield |
| 1 | H | Et | 8 | 50 | – | |
| 2 | H | 8 | 55 | – | ||
| 3 | H | Me2CHCH2 | 8 | 49 | – | |
| 4 | H | MeOCH2CH2 | 8 | 44 | – | |
| 5 | H | CH2=CHCH2 | 4 | 97 | 75 | |
| 6 | H | Bn | 4 | 99 | 70 | |
| 7 | H | 4-FC6H4CH2 | 4 | 99 | 74 | |
| 8 | H | 4-MeOC6H4CH2 | 4 | 98 | 69 | |
| 9 | CO2Me | 4-FC6H4CH2 | 2 | 99 | 80 | |
| 10 | CO2Me | 4-MeOC6H4CH2 | 2 | 97 | 71 | |
| 11 | CO2Me | 4-ClC6H4 | 2 | 98 | 73 | |
| 12 | CO2Me | 4-MeOC6H4 | 2 | 99 | 75 | |
Regioselective decarboxylative addition of malonic acid mono-4-methoxyphenyl thioester (1b) to 4-trifluoromethylpyrimidin-2(1H)-ones 2a–m.
| entry | comp. | R1 | R2 | time (h) | yield |
| 1 | H | Me | 3 | 83 | |
| 2 | H | Et | 3 | 71 | |
| 3 | H | 3 | 77 | ||
| 4 | H | Me2CHCH2 | 3 | 77 | |
| 5 | H | MeOCH2CH2 | 3 | 75 | |
| 6 | H | CH2=CHCH2 | 3 | 73 | |
| 7 | H | Bn | 3 | 74 | |
| 8 | H | 4-FC6H4CH2 | 3 | 71 | |
| 9 | H | 4-MeOC6H4CH2 | 3 | 70 | |
| 10 | CO2Me | 4-FC6H4CH2 | 1 | 77 | |
| 11 | CO2Me | 4-MeOC6H4CH2 | 1 | 75 | |
| 12 | CO2Me | 4-ClC6H4 | 1 | 81 | |
| 13 | CO2Me | 4-MeOC6H4 | 1 | 72 | |
Scheme 1Hydrogenation of compounds 4–6 and preparation of N1(3)-unsubstituted compounds 9–11d.
Figure 2Molecular structure of compound 11b. Two enantiomers form a heterochiral dimer in the crystal state. Intermolecular hydrogen bonds in the dimer are shown as dashed lines. Thermal ellipsoids are defined at 50% probability.