Department of Physics, Thanthai Periyar Government Institute of Technology, Vellore 632 002, Tamilnadu, India.
Department of Physics, Global Institute of Engineering and Technology, Melvisharam, Vellore 632 509, Tamilnadu, India.
J Photochem Photobiol B. 2017 Aug;173:216-230. doi: 10.1016/j.jphotobiol.2017.05.043. Epub 2017 Jun 1.
The synthesized novel chloroquinoline derivatives 1-(2-chloro-4-phenylquinolin-3-yl)ethanone (CPQE), 1-(2,6-dichloro-4-phenylquinolin-3-yl)ethanone (DCPQE), methyl 2,6-dichloro-4-phenylquinoline-3-carboxylate (MDCPQC),methyl 2-chloro-4-methylquinoline-3-carboxylate (MCMQC) were subjected to the elementary analysis like FT-IR, NMR and Mass spectra using GCMS. Also, single crystal X-ray diffraction study was executed for the compound MDCPQC. The crystal packing is stabilized by C-H…π and π-π interactions and also Chlorine-Chlorine short intermolecular contacts generating a three-dimensional supramolecular network. The antioxidant activity reduces high glucose level in the human body and hence the synthesized compounds were subjected for the estimation of antioxidant activity using DPPH method which exhibited good percentage of inhibition in comparison with ascorbic acid, a well-known anti-oxidant. The binding interaction of the chloroquinoline derivatives with calf thymus DNA (CT-DNA) has been explored by fluorescence quenching studies and molecular docking analysis has been employed to confirm the nature of binding. The prediction of pharmacological properties such as drug-likeness, molecular properties like absorption, distribution, metabolism, excretion and toxicity (ADMET) was carried out by computational studies to compare chloroquinoline derivatives with standard drug. Owing to the various potential biological activities of the quinoline compounds, molecular docking studies were also further carried out for the chloroquinoline derivatives, showing that they may act as effective anti-diabetic agents by inhibiting Glycogen Phosphorylase a protein.
合成的新型氯喹啉衍生物 1-(2-氯-4-苯基喹啉-3-基)乙酮(CPQE)、1-(2,6-二氯-4-苯基喹啉-3-基)乙酮(DCPQE)、2,6-二氯-4-苯基喹啉-3-羧酸甲酯(MDCPQC)、2-氯-4-甲基喹啉-3-羧酸甲酯(MCMQC)采用 GCMS 进行了元素分析,如 FT-IR、NMR 和质谱。此外,还对化合物 MDCPQC 进行了单晶 X 射线衍射研究。晶体堆积通过 C-H…π 和 π-π 相互作用以及氯-氯短分子间接触稳定,产生了三维超分子网络。抗氧化活性降低了人体内的高葡萄糖水平,因此,合成的化合物被用于使用 DPPH 方法评估抗氧化活性,与众所周知的抗氧化剂抗坏血酸相比,它们表现出了良好的抑制百分比。通过荧光猝灭研究探索了氯喹啉衍生物与小牛胸腺 DNA(CT-DNA)的结合相互作用,并采用分子对接分析来确认结合的性质。通过计算研究对药理学性质(如药物相似性、吸收、分布、代谢、排泄和毒性(ADMET))进行了预测,以将氯喹啉衍生物与标准药物进行比较。由于喹啉化合物具有多种潜在的生物学活性,还对氯喹啉衍生物进行了分子对接研究,表明它们可能通过抑制糖原磷酸化酶 a 蛋白而成为有效的抗糖尿病药物。