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Molecular dynamics force probe simulations of antibody/antigen unbinding: entropic control and nonadditivity of unbinding forces.

机译:抗体/抗原结合的分子动力学探针模拟:熵控制和结合力的非可加性。

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摘要

Unbinding of a spin-labeled dinitrophenyl (DNP) hapten from the monoclonal antibody AN02 F(ab) fragment has been studied by force probe molecular dynamics (FPMD) simulations. In our nanosecond simulations, unbinding was enforced by pulling the hapten molecule out of the binding pocket. Detailed inspection of the FPMD trajectories revealed a large heterogeneity of enforced unbinding pathways and a correspondingly large flexibility of the binding pocket region, which exhibited induced fit motions. Principal component analyses were used to estimate the resulting entropic contribution of approximately 6 kcal/mol to the AN02/DNP-hapten bond. This large contribution may explain the surprisingly large effect on binding kinetics found for mutation sites that are not directly involved in binding. We propose that such "entropic control" optimizes the binding kinetics of antibodies. Additional FPMD simulations of two point mutants in the light chain, Y33F and I96K, provided further support for a large flexibility of the binding pocket. Unbinding forces were found to be unchanged for these two mutants. Structural analysis of the FPMD simulations suggests that, in contrast to free energies of unbinding, the effect of mutations on unbinding forces is generally nonadditive.
机译:通过力探针分子动力学(FPMD)模拟研究了自旋标记的二硝基苯基(DNP)半抗原与单克隆抗体AN02 F(ab)片段的脱结合。在我们的纳秒级模拟中,通过将半抗原分子从结合袋中拉出来强制解除结合。 FPMD轨迹的详细检查显示,强制解除结合途径的异质性很大,并且结合口袋区域具有相应的较大柔性,表现出了诱导的配合运动。主成分分析用于估计对AN02 / DNP-半抗原键约6 kcal / mol的熵贡献。这种巨大的贡献可能解释了对不直接参与结合的突变位点发现的结合动力学具有惊人的巨大影响。我们提出这种“熵控制”优化了抗体的结合动力学。轻链中的两个点突变体Y33F和I96K的其他FPMD模拟为结合口袋的较大灵活性提供了进一步的支持。发现这两个突变体的解离力没有变化。 FPMD模拟的结构分析表明,与解除结合的自由能相反,突变对解除结合力的影响通常是不可累加的。

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