Andrási Melinda, Lehoczki Gábor, Nagy Zoltán, Gyémánt Gyöngyi, Pungor András, Gáspár Attila
Department of Inorganic and Analytical Chemistry, University of Debrecen, Debrecen, Hungary.
Department of Colloid and Environmental Chemistry, University of Debrecen, Debrecen, Hungary.
Electrophoresis. 2015 Jun;36(11-12):1274-81. doi: 10.1002/elps.201400513. Epub 2015 Mar 12.
This paper focuses on the investigation of the interactions between the anti-HSA-mAb and its protein antigen using CZE, ACE, and isothermal titration calorimetry. The CZE revealed the formation of the anti-HSA-mAb·HSA and anti-HSA-mAb·(HSA)2 complexes and the binding constants determined by plotting the amount of the bound anti-HSA-mAb as a function of the concentration of HSA. The ACE provided information on the binding strength from the change in effective electrophoretic mobility of the anti-HSA-mAb. These two separation techniques estimated the presence of two binding sites. The equilibrium dissociation constant values obtained by CZE and ACE were found to be 2.26 × 10(-6) M for anti-HSA-mAb·HSA, 1.22 × 10(-6) M for anti-HSA-mAb·(HSA)2 and 4.45 × 10(-8) M for anti-HSA-mAb·HSA, 1.08 × 10(-7) M for anti-HSA-mAb·(HSA)2 , respectively. The dissociation constant data obtained by ACE were in congruence with the values obtained by isothermal titration calorimetry (2.74 × 10(-8) M, 1.04 × 10(-7) M).
本文重点研究了抗人血清白蛋白单克隆抗体(anti-HSA-mAb)与其蛋白质抗原之间的相互作用,采用了毛细管区带电泳(CZE)、不对称毛细管电泳(ACE)和等温滴定量热法。CZE揭示了抗-HSA-mAb·HSA和抗-HSA-mAb·(HSA)2复合物的形成,并通过绘制结合的抗-HSA-mAb量与HSA浓度的函数关系来确定结合常数。ACE通过抗-HSA-mAb有效电泳迁移率的变化提供了结合强度的信息。这两种分离技术估计存在两个结合位点。通过CZE和ACE获得的平衡解离常数分别为:抗-HSA-mAb·HSA为2.26×10(-6) M,抗-HSA-mAb·(HSA)2为1.22×10(-6) M;抗-HSA-mAb·HSA为4.45×10(-8) M,抗-HSA-mAb·(HSA)2为1.08×10(-7) M。通过ACE获得的解离常数数据与通过等温滴定量热法获得的值(2.74×10(-8) M,1.04×10(-7) M)一致。