Department of Biotechnology, Karpagam Academy of Higher Education, Coimbatore, Tamil Nadu, India.
Department of Plant Sciences, University of Hyderabad, Gachibowli, Hyderabad, India.
J Biomol Struct Dyn. 2024 Jan-Feb;42(1):475-482. doi: 10.1080/07391102.2023.2194001. Epub 2023 Mar 28.
Rhodanine is an important scaffold in medicinal chemistry and it act as potent anticancer agent and other pharmacological effects. In pharmacokinetics and pharmacodynamics studies of the drug, the drug binding properties on serum protein is crucial for producing better drug. This study was designed to explore the binding interactions between the Rhodanine derivative (P4OC) on Bovine Serum Albumin (BSA). The interactions between P4OC and BSA were investigated using biophysical approach and molecular docking. The quenching mechanism and binding constants of P4OC on BSA were determined by biophysical approach through fluorescence spectroscopic experiments. Circular dichroism (CD) spectroscopy was used to study the secondary structural changes of BSA upon P4OC binding. The fluorescence experiments of P4OC binding on BSA show good drug binding with static quenching constants using stern Volmer plot and found the quenching constant value = 1.12762 × 10 M with corresponding binding free energy (ΔG) -2.303 kcal/mol. The molecular displacement fluorescence emission on BSA-P4OC complex by site specific markers shows that P4OC binds at I A sub-domain of BSA further confirmed peak shift by synchronous fluorescence of P4OC on BSA with tyrosine, tryptophan and phenylalanine amino acids. Increasing concentration of P4OC on BSA found secondary structural changes, the percentage of α-helix was decreased as well increase percentage of β-sheet and random coil. The binding of P4OC to BSA was computationally studied by molecular docking methods. Thus, results obtained are in excellent agreement with experimental and theoretical results with respect to the binding mechanism and binding constant of P4OC on BSA. We concluded that, the rhodanine derivative P4OC possesses good drug binding properties on BSA. Further P4OC may be evaluated its potential pharmacological activities on clinical trial.Communicated by Ramaswamy H. Sarma.
脒基硫脲是药物化学中的一种重要骨架,它具有很强的抗癌作用和其他药理作用。在药物的药代动力学和药效学研究中,药物与血清蛋白的结合特性对于产生更好的药物至关重要。本研究旨在探索脒基硫脲衍生物(P4OC)与牛血清白蛋白(BSA)之间的结合相互作用。通过生物物理方法和分子对接研究了 P4OC 与 BSA 之间的相互作用。通过荧光光谱实验的生物物理方法确定了 P4OC 与 BSA 之间的猝灭机制和结合常数。圆二色性(CD)光谱用于研究 P4OC 结合BSA 后二级结构的变化。P4OC 与 BSA 结合的荧光实验表明,通过 Stern-Volmer 图得到了良好的药物结合,静态猝灭常数为 1.12762×10^5 M,相应的结合自由能(ΔG)为-2.303 kcal/mol。通过对 BSA-P4OC 复合物的位点特异性标记的分子置换荧光发射实验表明,P4OC 结合在 BSA 的 IA 亚域,进一步通过 P4OC 与 BSA 上的酪氨酸、色氨酸和苯丙氨酸氨基酸的同步荧光证实了峰位移。BSA 上 P4OC 浓度的增加发现二级结构发生变化,α-螺旋的百分比降低,β-折叠和无规卷曲的百分比增加。通过分子对接方法对 P4OC 与 BSA 的结合进行了计算研究。因此,与实验和理论结果相比,获得的结果在结合机制和 P4OC 与 BSA 的结合常数方面非常一致。我们得出结论,脒基硫脲衍生物 P4OC 对 BSA 具有良好的药物结合性能。进一步的 P4OC 可能会在临床试验中评估其潜在的药理活性。由 Ramaswamy H. Sarma 传达。