使用自动动态光散射滴定法和不对称流场流动分级法以及蛋白质识别免疫测定法监测蛋白质与聚磷腈聚电解质的络合。

IF 4.7 Q1 POLYMER SCIENCE
Michael Lueckheide, Alexander Marin, Harichandra D. Tagad, Nicholas D. Posey, Vivek M. Prabhu* and Alexander K. Andrianov*, 
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引用次数: 0

摘要

聚磷腈是一类具有强大免疫佐剂活性的固有柔性聚电解质,通过电荷络合与抗原蛋白进行非共价自组装。采用自动动态光散射滴定、不对称流场流动分级(AF4)、酶联免疫吸附试验(ELISA)和荧光猝灭法,在生理条件下研究了聚磷腈佐剂、聚[二(羧基苯氧基)磷腈](PCPP)和模型疫苗抗原鸡蛋溶菌酶之间超分子复合物的形成。观察到三种自组装机制,包括PCPP与溶菌酶在纳米范围内的络合、多链复合物和具有复合物的较大聚集体,其特征是每个PCPP链的最大负载量超过600个蛋白质分子,解离常数在微摩尔范围内(Kd=7×10-6mol/L)。与等效溶菌酶溶液相比,PCPP结合的溶菌酶的抗原性在很大程度上保留了所有复合物,但在严重聚集的系统中观察到显著降低。用升高的NaCl或KCl盐浓度控制络合机制的途径表明了离子特异性效应,使得在更高的NaCl下存在更多更小尺寸的络合物,这与PCPP溶解度争论的直觉相反。虽然混合顺序在较低的混合化学计量下显示出显著的影响,但较高的NaCl盐一起降低了这种影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Monitoring Protein Complexation with Polyphosphazene Polyelectrolyte Using Automated Dynamic Light Scattering Titration and Asymmetric Flow Field Flow Fractionation and Protein Recognition Immunoassay

Monitoring Protein Complexation with Polyphosphazene Polyelectrolyte Using Automated Dynamic Light Scattering Titration and Asymmetric Flow Field Flow Fractionation and Protein Recognition Immunoassay

Polyphosphazenes represent a class of intrinsically flexible polyelectrolytes with potent immunoadjuvant activity, which is enabled through non-covalent self-assembly with antigenic proteins by charge complexation. The formation of supramolecular complexes between polyphosphazene adjuvant, poly[di(carboxylatophenoxy)phosphazene] (PCPP), and a model vaccine antigen, hen egg lysozyme, was studied under physiological conditions using automated dynamic light scattering titration, asymmetric flow field flow fractionation (AF4), enzyme-linked immunosorbent assay (ELISA), and fluorescent quenching methods. Three regimes of self-assembly were observed covering complexation of PCPP with lysozyme in the nano-scale range, multi-chain complexes, and larger aggregates with complexes characterized by a maximum loading of over six hundred protein molecules per PCPP chain and dissociation constant in the micromolar range (Kd = 7 × 10–6 mol/L). The antigenicity of PCPP bound lysozyme, when compared to equivalent lysozyme solutions, was largely retained for all complexes, but observed a dramatic reduction for heavily aggregated systems. Routes to control the complexation regimes with elevated NaCl or KCl salt concentrations indicate ion-specific effects, such that more smaller-size complexes are present at higher NaCl, counterintuitive with respect to PCPP solubility arguments. While the order of mixing shows a prominent effect at lower stoichiometries of mixing, higher NaCl salt reduces the effect all together.

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