Rahnama Elaheh, Mahmoodian-Moghaddam Maryam, Khorsand-Ahmadi Sabra, Saberi Mohammad Reza, Chamani Jamshidkhan
a Faculty of Sciences, Department of Biochemistry and Biophysics , Islamic Azad University , Mashhad Branch, Mashhad , Iran.
J Biomol Struct Dyn. 2015;33(3):513-33. doi: 10.1080/07391102.2014.893540. Epub 2014 Apr 10.
The interaction between metformin and human serum albumin (HSA), as well as its glycated form (gHSA) was investigated by multiple spectroscopic techniques, zeta potential, and molecular modeling under physiological conditions. The steady state and time-resolved fluorescence data displayed the quenching mechanism of HSA-metformin and gHSA-metformin was static. The binding information, including the binding constants, number of binding sites, effective quenching constant showed that the binding affinity of metformin to HSA was greater than to gHSA which also confirmed by anisotropy measurements. It was determined that metformin had two and one set of binding sites on HSA and gHSA, respectively. Far-UV CD spectra of proteins demonstrated that the α-helical content decreased with increasing metformin concentration. The zeta potential and resonance light scattering (RLS) diagrams provided that lower drug concentration induced metformin aggregation on gHSA surface as compare to HSA. The increase in polarizability was one of the important factors for the enhancement of RLS and the formation of drug/protein complexes. The zeta potential results suggested that both hydrophobic and electrostatic interactions played important roles in the protein-metformin complex formation. Site marker experiments and molecular modeling showed that the metformin bound to subdomain IIIA (Sudlow's site II) on HSA and gHSA.
在生理条件下,采用多种光谱技术、zeta电位和分子模拟研究了二甲双胍与人血清白蛋白(HSA)及其糖化形式(gHSA)之间的相互作用。稳态和时间分辨荧光数据表明,HSA-二甲双胍和gHSA-二甲双胍的猝灭机制为静态猝灭。结合信息,包括结合常数、结合位点数、有效猝灭常数表明,二甲双胍与HSA的结合亲和力大于与gHSA的结合亲和力,这也通过各向异性测量得到证实。确定二甲双胍在HSA和gHSA上分别有两组和一组结合位点。蛋白质的远紫外圆二色光谱表明,随着二甲双胍浓度的增加,α-螺旋含量降低。zeta电位和共振光散射(RLS)图表明,与HSA相比,较低的药物浓度会诱导二甲双胍在gHSA表面聚集。极化率的增加是增强RLS和形成药物/蛋白质复合物的重要因素之一。zeta电位结果表明,疏水相互作用和静电相互作用在蛋白质-二甲双胍复合物的形成中均起重要作用。位点标记实验和分子模拟表明,二甲双胍与HSA和gHSA上的亚结构域IIIA(Sudlow位点II)结合。