| Literature DB >> 35056873 |
Mario Komar1, Tatjana Gazivoda Kraljević2, Igor Jerković3, Maja Molnar1.
Abstract
In this study, deep eutectic solvents (DESs) were used as green and eco-friendly media for the synthesis of substituted 2-mercaptoquinazolin-4(3H)-ones from different anthranilic acids and aliphatic or aromatic isothiocyanates. A model reaction on anthranilic acid and phenyl isothiocyanate was performed in 20 choline chloride-based DESs at 80 °C to find the best solvent. Based on the product yield, choline chloride:urea (1:2) DES was found to be the most effective, while DESs acted both as solvents and catalysts. Desired compounds were prepared with moderate to good yields using stirring, microwave-assisted, and ultrasound-assisted synthesis. Significantly, higher yields were obtained with mixing and ultrasonication (16-76%), while microwave-induced synthesis showed lower effectiveness (13-49%). The specific contribution of this research is the use of DESs in combination with the above-mentioned green techniques for the synthesis of a wide range of derivatives. The structures of the synthesized compounds were confirmed by 1H and 13C NMR spectroscopy.Entities:
Keywords: 2-mercaptoquinazolin-4(3H)-one; deep eutectic solvents; green chemistry; microwave-assisted synthesis; ultrasound-assisted synthesis
Year: 2022 PMID: 35056873 PMCID: PMC8780518 DOI: 10.3390/molecules27020558
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Structure of quinazolinone and quinazolinedione cores [1].
Figure 2Quinazolinone-based registered drugs [12].
Scheme 1Synthesis of substituted 2-mercaptoquinazolin-4(3H)-ones by green methods.
2-Mercapto-3-phenylquinazolin-4(3H)-one yields obtained in different choline chloride-based DESs at 80 °C.
| Entry | DES | Molar Ratio | Yield ** (%) |
|---|---|---|---|
| 1 | ChCl:Urea | 1:2 | 63 |
| 2 | ChCl: | 1:3 | 59 |
| 3 | ChCl:1,3-Dimethylurea | 1:2 | 24 |
| 4 | ChCl:Thiourea | 1:2 | 20 |
| 5 | ChCl:Acetamide | 1:2 | 33 |
| 6 | ChCl:Butane-1,4-diol | 1:2 | 47 |
| 7 | ChCl:Ethane-1,2-diol | 1:2 | 24 |
| 8 | ChCl:Glycerol | 1:2 | 21 |
| 9 | ChCl:Xylitol | 1:1 | 14 |
| 10 | ChCl:Sorbitol | 1:1 | 10 |
| 11 | ChCl:Glucose | 2:1 | * |
| 12 | ChCl:Fructose | 2:1 | * |
| 13 | ChCl:Citric acid | 1:1 | * |
| 14 | ChCl:Tartaric acid | 1:1 | * |
| 15 | ChCl:Oxalic acid | 1:1 | * |
| 16 | ChCl:Levulinic acid | 1:2 | * |
| 17 | ChCl:Lactic acid | 1:2 | * |
| 18 | ChCl:Malic acid | 1:1 | * |
| 19 | ChCl:Malonic acid | 1:1 | * |
| 20 | ChCl:Maleic acid | 1:1 | * |
* The product was not obtained. ** The yields were calculated based on the anthranilic acid for the product after precipitation.
A comparison of the substituted 2-mercaptoquinazolin-4(3H)-ones yields1 obtained with selected green methods with literature yields.
|
| |||||||
|---|---|---|---|---|---|---|---|
| Compounds | R 1 | Ar/R 2 | |||||
|
| H | Me | 42 | 39 | 17 | 46 [ | 264–265 |
|
| H | Et | 40 | 18 | 36 | 72 [ | 255 |
|
| H | Allyl | 24 | 15 | 21 | 35 [ | 206–208 |
|
| H | Ph | 63 | 22 | 34 | 35 [ | 304–305 |
|
| H | Bn | 62 | 41 | 64 | 50 [ | 248–250 |
|
| H | 4-MePh | 27 | 47 | 38 | 94 [ | 312–313 |
|
| H | 4-FPh | 48 | 32 | 25 | 88 [ | 336–337 |
|
| H | 4-ClPh | 55 | 49 | 41 | 75 [ | 331–332 |
|
| H | 4-BrPh | 66 | 24 | 58 | 84 [ | 330–331 |
|
| H | 3-OMePh | 64 | 21 | 57 | 91 [ | 285 |
|
| H | 3-ClPh | 41 | 12 | 25 | 86 [ | 300–301 |
|
| 6-I | Me | 31 | 20 | 40 | 73 [ | 307–308 |
|
| 6-I | Et | 25 | 14 | 18 | 10 [ | 290–292 |
|
| 6-I | Allyl | 22 | 13 | 21 | 20 [ | 234–235 |
|
| 6-I | Ph | 32 | 16 | 22 | 91 [ | 350–352 |
|
| 6-I | Bn | 45 | 10 | 28 | 352 | |
|
| 6-I | 4-MePh | 49 | 29 | 47 | 350–351 | |
|
| 6-I | 4-FPh | 43 | 22 | 18 | 349–350 | |
|
| 6-I | 4-ClPh | 39 | 31 | 38 | 75 [ | 337–339 |
|
| 6-I | 4-BrPh | 49 | 30 | 51 | 355–357 | |
|
| 6-I | 3-OMePh | 53 | 25 | 58 | 314–315 | |
|
| 6-I | 3-ClPh | 50 | 25 | 44 | 313–315 | |
|
| 6-Br | Me | 21 | 14 | 23 | 64 [ | 280–281 |
|
| 6-Br | Et | 25 | 13 | 17 | 243–244 | |
|
| 6-Br | Allyl | 40 | 14 | 40 | 242–243 | |
|
| 6-Br | Ph | 36 | 13 | 19 | 63 [ | 351–353 |
|
| 6-Br | Bn | 58 | 27 | 60 | 244 | |
|
| 6-Br | 4-MePh | 76 | 31 | 41 | 60 [ | 341–342 |
|
| 6-Br | 4-FPh | 57 | 19 | 28 | 354–355 | |
|
| 6-Br | 4-ClPh | 62 | 27 | 48 | 344–346 | |
|
| 6-Br | 4-BrPh | 65 | 33 | 56 | 349–350 | |
|
| 6-Br | 3-OMePh | 49 | 28 | 30 | 312–313 | |
|
| 6-Br | 3-ClPh | 57 | 18 | 33 | 305–307 | |
|
| 7-Cl | Me | 58 | 19 | 18 | 327–328 | |
|
| 7-Cl | Et | 22 | 15 | 21 | 265 | |
|
| 7-Cl | Allyl | 47 | 13 | 26 | 248–249 | |
|
| 7-Cl | Ph | 67 | 19 | 36 | 71 (90) [ | 313–314 |
|
| 7-Cl | Bn | 26 | 17 | 34 | 270–272 | |
|
| 7-Cl | 4-MePh | 42 | 13 | 24 | 73 [ | 307–309 |
|
| 7-Cl | 4-FPh | 34 | 18 | 18 | 314–315 | |
|
| 7-Cl | 4-ClPh | 50 | 14 | 27 | 76 [ | 302–303 |
|
| 7-Cl | 4-BrPh | 50 | 16 | 38 | 320–322 | |
|
| 7-Cl | 3-OMePh | 40 | 25 | 44 | 256–257 | |
|
| 7-Cl | 3-ClPh | 39 | 19 | 54 | 248–249 | |
|
| 6,8-(Cl)2 | Me | 36 | 15 | 41 | 246–247 | |
|
| 6,8-(Cl)2 | Et | 19 | 119 | 15 | 184 | |
|
| 6,8-(Cl)2 | Allyl | 21 | 23 | 30 | 179 | |
|
| 6,8-(Cl)2 | Ph | 20 | 18 | 19 | 65 [ | 283–285 |
|
| 6,8-(Cl)2 | Bn | 51 | 14 | 27 | 206–208 | |
|
| 6,8-(Cl)2 | 4-MePh | 25 | 27 | 40 | 70 [ | 244 |
|
| 6,8-(Cl)2 | 4-FPh | 33 | 22 | 24 | 268–269 | |
|
| 6,8-(Cl)2 | 4-ClPh | 34 | 30 | 30 | 259–260 | |
|
| 6,8-(Cl)2 | 4-BrPh | 60 | 37 | 48 | 280–282 | |
|
| 6,8-(Cl)2 | 3-OMePh | 33 | 14 | 24 | 219–220 | |
|
| 6,8-(Cl)2 | 3-ClPh | 38 | 24 | 43 | 214–216 | |
1 The yields were calculated based on the anthranilic acid for the product after precipitation; 2 ChCl:urea (1:2), 80 °C, 1 h; 3 ChCl:urea (1:2), 1800 W, 80 °C, 1 h; 4 ChCl:urea (1:2), 50 W, 80 °C, 1 h.
Recyclability of DES for the synthesis of 8f.
| Solvent | Yield of 8f (%) |
|---|---|
| ChCl:Urea | 76 |
| 1st recycle | 72 |
| 2nd recycle | 77 |
| 3rd recycle | 80 |
| 4th recycle | 77 |
Scheme 2A plausible mechanism for the synthesis of substituted 2-mercaptoquinazolin-4(3H)-ones.