| Literature DB >> 23402603 |
Ruping Tang1, Linhong Jin, Chengli Mou, Juan Yin, Song Bai, Deyu Hu, Jian Wu, Song Yang, Baoan Song.
Abstract
BACKGROUND: Plant fungi (e.g., Pellicularia sasakii, Gibberella zeae, Fusarium oxysporum, and Cytospora mandshurica and Phytophthora infestans) and bacteria (e.g., Ralstonia solanacearum) are extremely difficult to manage in agricultural production. The high incidence of plant mortality and the lack of effective control methods make P. sasakii and R. solanacearum two of the world's most destructive plant pathogens. Pathogenic fungi and bacteria are responsible for billions of dollars in economic losses worldwide each year. Thus, we designed an active amide structure and synthesized a series of novel amide derivatives containing a triazole moiety to discover new bioactive molecules and pesticides that can act against fungi and bacteria.Entities:
Year: 2013 PMID: 23402603 PMCID: PMC3598687 DOI: 10.1186/1752-153X-7-30
Source DB: PubMed Journal: Chem Cent J ISSN: 1752-153X Impact factor: 4.215
Figure 1Commercialized fungicides containing 1,2,4-triazole or amide substructures.
Yields of compound 4i at different reaction conditions
| 1 | Tetrahydrofuran | 8 | Potassium carbonate | 50 | 73.8 |
| 2 | Toluene | 8 | Potassium carbonate | 50 | 15.3 |
| 3 | Acetonitrile | 8 | Potassium carbonate | 50 | 22.1 |
| 4 | Dichloromethane | 8 | Potassium carbonate | 50 | 40.0 |
| 5 | Tetrahydrofuran | 8 | Triethylamine | 50 | 33.6 |
| 6 | Tetrahydrofuran | 8 | Pyridine | 50 | 55.4 |
| 7 | Tetrahydrofuran | 4 | Potassium carbonate | 50 | 62.5 |
| 8 | Tetrahydrofuran | 6 | Potassium carbonate | 50 | 67.8 |
| 9 | Tetrahydrofuran | 10 | Potassium carbonate | 50 | 76.4 |
| 10 | Tetrahydrofuran | 8 | Potassium carbonate | 25 | 60.1 |
| 11 | Tetrahydrofuran | 10 | Potassium carbonate | 25 | 62.2 |
Antifungal activity of title compounds 4a to 4v at a concentration of 50 mg/L
| 29.02±0.96 | 22.91±1.26 | 24.45±0.74 | 17.12±0.76 | 13.96±1.09 | |
| 35.01±0.82 | 31.26±0.84 | 13.93±1.86 | 18.41±0.75 | 10.56±0.79 | |
| 34.40±0.90 | 5.88±0.92 | 21.55±1.32 | 12.30±0.91 | 14.88±0.89 | |
| 22.39±0.80 | 8.66±0.91 | 16.71±0.82 | 12.33±0.94 | 15.61±1.41 | |
| 17.35±1.01 | 5.26±0.84 | 8.97±0.72 | 11.55±1.31 | 15.26±0.83 | |
| 29.38±0.91 | 26.38±0.88 | 20.38±0.61 | 13.78±0.92 | 16.33±0.68 | |
| 5.90±1.02 | 7.84±1.12 | 12.01±0.88 | 10.55±1.12 | 17.82±0.99 | |
| 17.82±1.22 | 25.75±0.96 | 21.56±0.91 | 17.52±0.72 | 11.53±0.96 | |
| 40.06±0.87 | 33.12±0.86 | 29.41±0.83 | 50.06±0.81 | 22.52±0.96 | |
| 41.22±1.00 | 32.18±0.89 | 30.11±1.33 | 50.22±1.10 | 22.18±0.80 | |
| 46.44±0.93 | 37.02±0.79 | 40.01±1.17 | 39.68±0.77 | 18.82±0.90 | |
| 32.66±0.80 | 10.12±0.79 | 18.69±0.93 | 36.61±0.91 | 10.32±0.89 | |
| 31.67±0.79 | 15.68±0.82 | 19.00±1.34 | 28.68±0.99 | 15.64±1.12 | |
| 7.80±1.36 | 4.65±0.76 | 24.36±1.02 | 10.31±0.79 | 7.14±0.86 | |
| 38.64±0.95 | 6.52±0.99 | 27.36±1.44 | 30.14±0.85 | 13.02±1.09 | |
| 0 | 0 | 12.69±1.00 | 18.12±0.65 | 5.10±0.89 | |
| 30.28±0.92 | 33.74±0.98 | 30.65±0.95 | 51.25±0.87 | 19.04±0.88 | |
| 39.64±0.88 | 35.23±1.32 | 36.77±0.75 | 11.32±0.78 | 10.33±1.02 | |
| 22.90±1.25 | 24.36±0.91 | 26.69±0.89 | 20.84±1.11 | 14.33±0.81 | |
| 18.69±1.20 | 20.13±0.72 | 15.36±0.90 | 19.61±0.80 | 10.13±0.72 | |
| 58.90±0.64 | 52.11±1.44 | 48.61±1.03 | 60.10±0.86 | 47.31±1.14 | |
| 35.12±0.87 | 30.68±0.79 | 29.55±0.94 | 28.12±0.79 | 16.88±0.91 | |
| Hymexazolb | 55.54±3.90 | 56.12±4.10 | 49.61±7.84 | 51.21±5.96 | 68.22±2.41 |
aAverage of five replicates, bThe commercial agricultural fungicide hymexazol was used for activity comparison.
Antibacterial activity of compounds 4a to 4v against
| 0 | / | |
| 55 | 23 | |
| 0 | / | |
| 0 | / | |
| 30 | 28 | |
| 14 | 6 | |
| 0 | / | |
| 17 | 0 | |
| 0 | / | |
| 40 | 0 | |
| 24 | 0 | |
| 17 | 10 | |
| 71 | 29 | |
| 11 | 6 | |
| 38 | 5 | |
| 0 | / | |
| 65 | 26 | |
| 16 | 6 | |
| 11 | 14 | |
| 29 | 21 | |
| 0 | / | |
| 22 | 1 | |
| Kocide3000 [Cu(OH)2] | 100.0 | 100.0 |