首页> 美国卫生研究院文献>International Journal of Molecular Sciences >Hydrodynamic and Electrophoretic Properties of Trastuzumab/HER2 Extracellular Domain Complexes as Revealed by Experimental Techniques and Computational Simulations
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Hydrodynamic and Electrophoretic Properties of Trastuzumab/HER2 Extracellular Domain Complexes as Revealed by Experimental Techniques and Computational Simulations

机译:实验技术和计算模拟表明曲妥珠单抗/ HER2细胞外结构域复合物的流体力学和电泳特性

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摘要

The combination of hydrodynamic and electrophoretic experiments and computer simulations is a powerful approach to study the interaction between proteins. In this work, we present hydrodynamic and electrophoretic experiments in an aqueous solution along with molecular dynamics and hydrodynamic modeling to monitor and compute biophysical properties of the interactions between the extracellular domain of the HER2 protein (eHER2) and the monoclonal antibody trastuzumab (TZM). The importance of this system relies on the fact that the overexpression of HER2 protein is related with the poor prognosis breast cancers (HER2++ positives), while the TZM is a monoclonal antibody for the treatment of this cancer. We have found and characterized two different complexes between the TZM and eHER2 proteins (1:1 and 1:2 TZM:eHER2 complexes). The conformational features of these complexes regulate their hydrodynamic and electrostatic properties. Thus, the results indicate a high degree of molecular flexibility in the systems that ultimately leads to higher values of the intrinsic viscosity, as well as lower values of diffusion coefficient than those expected for simple globular proteins. A highly asymmetric charge distribution is detected for the monovalent complex (1:1 complex), which has strong implications in correlations between the experimental electrophoretic mobility and the modeled net charge. In order to understand the dynamics of these systems and the role of the specific domains involved, it is essential to find biophysical correlations between dynamics, macroscopic transport and electrostatic properties. The results should be of general interest for researchers working in this area.
机译:将流体力学和电泳实验与计算机模拟相结合是研究蛋白质之间相互作用的有效方法。在这项工作中,我们介绍了水溶液中的流体力学和电泳实验,以及分子动力学和流体力学建模,以监测和计算HER2蛋白(eHER2)的细胞外结构域与单克隆抗体曲妥珠单抗(TZM)之间相互作用的生物物理特性。该系统的重要性取决于以下事实:HER2蛋白的过表达与预后差的乳腺癌(HER2 ++阳性)有关,而TZM是用于治疗该癌症的单克隆抗体。我们已经发现并表征了TZM和eHER2蛋白之间的两种不同的复合物(1:1和1:2 TZM:eHER2复合物)。这些配合物的构象特征调节其流体力学和静电性能。因此,结果表明该系统中的高度分子柔性,最终导致比简单球状蛋白所期望的特性粘度更高的值,以及扩散系数更低的值。检测到单价络合物(1:1络合物)的高度不对称电荷分布,这对实验电泳迁移率与模型化净电荷之间的相关性具有重要意义。为了了解这些系统的动力学以及所涉及的特定域的作用,必须找到动力学,宏观传输和静电性质之间的生物物理相关性。该结果对于该领域的研究人员应该是普遍感兴趣的。

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