Research and Development Centre, Bharathiar University, Coimbatore 641046, India.
Department of Biotechnology, School of Bio-Sciences and Technology, VIT University, Vellore 632014, India.
Bioorg Chem. 2019 May;86:410-419. doi: 10.1016/j.bioorg.2019.02.003. Epub 2019 Feb 7.
As the global need for drugs getting increases, the necessity of novel and effective drugs are the need of the day. Pyrazoles are one of the active molecules in novel drug discovery. The present study deals about the synthesis of precursors 4-(4-fluorophenyl)-6-isopropyl-2-(methylsulfonyl) pyrimidine-5-carbohydrazides (3a-m) from methyl-4-(4-fluorophenyl)-6-isopropyl-2-(methyl sulfonyl) pyrimidine-5-carboxylate (2) by treating with substituted acetophenone. Further, Vilsmeier-Haack reaction of compounds 3a-m at 70 °C for 8-10 hrs gave novel pyrazole carbaldehyde derivatives (4a-m) in good yield. Biological properties like antioxidant, anti-breast cancer and anti-inflammatory of newly synthesized compounds (4a-m) were determined. The enzymes Cyclooxygenase-2 and Phosphoinositide-3-Kinase are most responsible for the corresponding diseases such as inflammation and breast cancer respectively. In order to examine the interaction between these two enzymes and our synthesized compounds 4a-m, molecular docking study was carried out. From the results, few compounds of 4a-m were found to have anti-inflammatory properties by showing excellent COX-2 inhibition and HRBC membrane stabilization properties. ADMET prediction results were also valuable to screen the most effective pyrazole derivatives to establish them as future COX-2 inhibitors or anti-inflammatory drugs.
随着全球对药物的需求不断增加,寻找新型有效药物成为当务之急。吡唑类化合物是新药研发中具有活性的分子之一。本研究通过对 2(甲基-4-(4-氟苯基)-6-异丙基-2-(甲磺酰基)嘧啶-5-羧酸酯)进行取代苯乙酮处理,合成了前体 4-(4-氟苯基)-6-异丙基-2-(甲基磺酰基)嘧啶-5-甲酰胺(3a-m)。进一步地,将化合物 3a-m 在 70°C 下进行 Vilsmeier-Haack 反应 8-10 小时,得到了新型吡唑醛衍生物(4a-m),产率较高。对新合成的化合物(4a-m)的抗氧化、抗乳腺癌和抗炎等生物特性进行了测定。环氧化酶-2 和磷酯酰肌醇-3-激酶等酶是导致炎症和乳腺癌等相应疾病的主要原因。为了研究这些酶与我们合成的化合物 4a-m 之间的相互作用,进行了分子对接研究。结果表明,一些 4a-m 化合物具有抗炎作用,能够有效抑制 COX-2 并稳定 HRBC 膜。ADMET 预测结果也有助于筛选出最有效的吡唑衍生物,将其作为未来的 COX-2 抑制剂或抗炎药物。