Department of Nanoscience and Technology, Sri Ramakrishana Engineering College, Coimbatore, Tamilnadu 641 022, India.
Chemistry Research Centre, Mohamed Sathak Engineering College, Kilakarai 623 806, Tamilnadu, India.
J Photochem Photobiol B. 2018 Jun;183:374-384. doi: 10.1016/j.jphotobiol.2018.05.005. Epub 2018 May 7.
Binding interaction of Bovine Serum Albumin (BSA) with newly prepared rhodamine 6G-capped gold nanoparticles (Rh6G-Au NPs) under physiological conditions (pH 7.2) was investigated by a wide range of photophysical techniques. Rh6G-Au NPs caused the static quenching of the intrinsic fluorescence of BSA that resulted from the formation of ground-state complex between BSA and Rh6G-Au NPs. The binding constant from fluorescence quenching method (K = 1.04 × 10 L mol; LoD = 14.0 μM) is in accordance with apparent association constant (K = 1.14 × 10 M), which is obtained from absorption spectral studies. Förster resonance energy transfer (FRET) efficiency between the tryptophan (Trp) residue of BSA and fluorophore of Rh6G-Au NPs during the interaction was calculated to be 90%. The free energy change (ΔG = -23.07 kJ/mol) of BSA-Rh6G-Au NPs complex was calculated based on modified Stern-Volmer Plot. The time-resolved fluorescence analysis confirmed that quenching of BSA follows static mechanism through the formation of ground state complex. Furthermore, synchronous and three-dimensional fluorescence measurement, Raman spectral analysis and Circular Dichroism spectrum results corroborate the strong binding between Rh6G-Au NPs and BSA, which causes the conformational changes on BSA molecule. In addition, fluorescence imaging experiments of BSA in living human breast cancer (HeLa) cells was successfully demonstrated, which articulated the value of Rh6G-Au NPs practical applications in biological systems.
在生理条件(pH 7.2)下,通过广泛的光物理技术研究了牛血清白蛋白(BSA)与新制备的罗丹明 6G 封端金纳米粒子(Rh6G-Au NPs)的结合相互作用。Rh6G-Au NPs 导致 BSA 的本征荧光发生静态猝灭,这是由于 BSA 和 Rh6G-Au NPs 之间形成了基态复合物的结果。荧光猝灭法得到的结合常数(K=1.04×104 L/mol;LoD=14.0 μM)与表观结合常数(K=1.14×10 M)一致,这是从吸收光谱研究中获得的。在相互作用过程中,BSA 中的色氨酸(Trp)残基和 Rh6G-Au NPs 荧光团之间的Förster 共振能量转移(FRET)效率计算为 90%。基于改进的 Stern-Volmer 图计算了 BSA-Rh6G-Au NPs 复合物的自由能变化(ΔG=-23.07 kJ/mol)。时间分辨荧光分析证实,BSA 的猝灭遵循静态机制,通过形成基态复合物。此外,同步和三维荧光测量、拉曼光谱分析和圆二色光谱结果证实了 Rh6G-Au NPs 与 BSA 之间的强结合,这导致了 BSA 分子的构象变化。此外,还成功地在活的人乳腺癌(HeLa)细胞中的 BSA 荧光成像实验中证明了 Rh6G-Au NPs 的实际应用价值,这阐明了 Rh6G-Au NPs 在生物系统中的应用价值。