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Utilization of Kinetically Enhanced Monovalent Binding Affinity by Immunoassays Based on Multivalent Nanoparticle-Antibody Bioconjugates

机译:基于多价纳米粒子-抗体生物共轭物的免疫测定对动力学增强的单价结合亲和力的利用。

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The monovalent binding affinity of high binding site density nanoparticle-antibody bioconjugates is shown to exceed the intrinsic affinity of the original, monoclonal antibody. The nanoparticle-antibody bioconjugates were prepared by covalent coupling of antibodies to long-lifetime fluorescent, europium(III) chelate nanoparticles, 107 nm in diameter. Experiments were carried out in standard microtitration wells to determine solid-phase association and dissociation rate constants, nonspecific binding, and affinity constants of the various binding site density nanoparticle-antibody bioconjugates and the conventionally labeled monoclonal antibody. The affinity constant for monovalent binding of a high binding site density bioconjugate (5.4×10~(10) M~(-1)) was 8-fold higher than the intrinsic affinity of the antibody (6.6×10~(9) M~(-1)). The separately measured association (2.5×10~(6) M~(-1) s~(-1)) and dissociation (3.7×10~(-5) s~(-1)) rate constants of the bioconjugate were 2-fold higher and 4-fold lower, respectively, compared to the antibody. The dependence of the association rate constant of the density of the binding sites enhanced the kinetics and the affinity of the high binding site density bioconjugates. The nanoparticle labels with high specific activity, low nonspecific binding, and enhanced binding affinity of the nanoparticle-antibody bioconjugates contribute to the design of the next generation immunoassays with extreme sensitivity.
机译:高结合位点密度的纳米颗粒-抗体生物共轭物的单价结合亲和力显示超过原始单克隆抗体的固有亲和力。通过将抗体与直径为107 nm的长寿命荧光fluorescent(III)螯合物纳米颗粒进行共价偶联来制备纳米颗粒-抗体生物共轭物。在标准微量滴定孔中进行实验,以确定各种结合位点密度纳米粒子-抗体生物结合物和常规标记单克隆抗体的固相缔合和解离速率常数,非特异性结合以及亲和常数。高结合位点密度生物缀合物(5.4×10〜(10)M〜(-1))的单价结合亲和常数比抗体的固有亲和力(6.6×10〜(9)M〜)高8倍。 (-1))。分别测得的生物结合物的缔合(2.5×10〜(6)M〜(-1)s〜(-1))和解离(3.7×10〜(-5)s〜(-1))的速率常数为2与抗体相比,分别高2倍和低4倍。结合位点密度的缔合速率常数的依赖性增强了高结合位点密度生物缀合物的动力学和亲和力。具有高比活性,低非特异性结合和增强的纳米抗体-生物结合物结合亲和力的纳米颗粒标记物有助于设计具有极高灵敏度的下一代免疫测定。

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