940892-28-4Relevant academic research and scientific papers
Synthesis and biological evaluation of tryptophan-derived rhodanine derivatives as PTP1B inhibitors and anti-bacterial agents
Liu, Hongyan,Sun, Danwen,Du, Hang,Zheng, Changji,Li, Jingya,Piao, Huri,Li, Jia,Sun, Liangpeng
, p. 163 - 173 (2019/04/13)
Several series of novel tryptophan-derived rhodanine derivatives were synthesized and identified as potential competitive PTP1B inhibitors and antibacterial agents. Among the compounds studied, 10b was found to have the best in vitro inhibition activity against PTP1B (IC50 = 0.36 ± 0.02 μM). In addition, the compounds also showed potent inhibition against other PTPs, especially CDC25B. Molecular docking analysis demonstrated that compounds 7c and 10b could occupy both the catalytic site and the adjacent pTyr binding site simultaneously. The compounds also showed higher levels of activity against gram-positive strains, the gram-negative strain Escherichia coli 1924, and multidrug-resistant gram-positive bacterial strains. Compounds 7c, 8c, 9e, 10a, and 10c had comparable or more potent antibacterial activity than the positive controls.
Synthesis and biological evaluation of dihydrotriazine derivatives as potential antibacterial agents
Zhang, Tian-Yi,Li, Chao,Tian, Yu-Shun,Li, Jia-Jun,Sun, Liang-Peng,Zheng, Chang-Ji,Piao, Hu-Ri
supporting information, p. 1737 - 1742 (2017/07/27)
A series of 1,4-dihydro-1,3,5-triazine derivatives were designed and synthesized and their antibacterial and antifungal activities were evaluated. Most of the synthesized compounds showed potent inhibition of several Gram-positive bacterial strains (including multidrug-resistant clinical isolates) and Gram-negative bacterial strains, with minimum inhibitory concentrations (MICs) in the range of 2.1–181.2?μmol/L. Compounds 7a and 7c presented the most potent inhibitory activities against Gram-positive bacteria (e.g., Staphylococcus aureus 4220), Gram-negative bacteria (e.g., Escherichia coli 1924), and the fungus Candida albicans 7535, with MICs of 2.1 or 4.1?μmol/L. Especially, compound 7a was the most potent, with an MIC of 2.1?μmol/L against four multidrug-resistant, Gram-positive bacterial strains. The cytotoxic activity of the compound 7a, 7c and 7f was assessed in HepG2 cells, and the results suggest that 1,4-dihydro-1,3,5-triazine derivatives bearing a 6-benzyloxynaphthalen moiety are interesting scaffolds for the development of novel antibacterial agents.
Synthesis and potential antibacterial activity of new rhodanine-3-acetic acid derivatives
Miao, Jing,Zheng, Chang-Ji,Sun, Liang-Peng,Song, Ming-Xia,Xu, Li-Li,Piao, Hu-Ri
, p. 4125 - 4132 (2013/09/02)
A series of rhodanine-3-acetic acid derivatives were synthesized and investigated for their antibacterial activity against gram-positive bacteria including multidrug-resistant clinical isolates. Among these compounds, 6k with a MIC of 2 μg/mL was as active as the standard drug (norfloxacin) but less active than oxacillin against S. aureus. The compounds 6b, 6e, 6h, 6k, 6n, and 6u presented better activities against multidrug-resistant Staphylococcus aureus than the standard drugs (norfloxacin and oxacillin), especially 6k with a MIC of 1 μg/mL. However, none of the compounds were active against gram-negative bacteria at 64 μg/mL. Graphical Abstract: This study presents a synthesis of novel rhodanine-3-acetic acid derivatives and their antibacterial activity.[Figure not available: see fulltext.]
