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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Toward Rational Design of Selective Molecularly Imprinted Polymers (MIPs) for Proteins: Computational and Experimental Studies of Acrylamide Based Polymers for Myoglobin
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Toward Rational Design of Selective Molecularly Imprinted Polymers (MIPs) for Proteins: Computational and Experimental Studies of Acrylamide Based Polymers for Myoglobin

机译:对蛋白质的选择性分子印迹聚合物(MIPS)的合理设计:酯基丙烯酰胺基聚合物的计算和实验研究

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摘要

Molecularly imprinted polymers (MIPs) have potential as alternatives to antibodies in the diagnosis and treatment of disease. However, atomistic level knowledge of the prepolymerization process is limited that would facilitate rational design of more efficient MIPs. Accordingly, we have investigated using computation and experiment the protein- monomer binding interactions that may influence the desired specificity. Myoglobin was used as the target protein and five different acrylamide-based monomers were considered. Protein binding sites were predicted using SiteMap and binding free energies of monomers at each site were calculated using MM-GBSA. Statistical thermodynamic analysis and study of atomistic interactions facilitated rationalization of monomer performance in MIP rebinding studies (% rebind; imprinting factors). CD spectroscopy was used to determine monomer effects on myoglobin secondary structure, with all monomers except the smallest monomer (acrylamide) causing significant changes. A complex interplay between different protein-monomer binding effects and MIP efficacy was observed. Validation of hypotheses for key binding features was achieved by rational selection of two different comonomer MIP combinations that produced experimental results in agreement with predictions. The comonomer studies revealed that uniform, noncompetitive binding of monomers around a target protein is favorable. This study represents a step toward future rational in silica design of MIPs for proteins.
机译:分子印迹聚合物(MIPS)具有疾病诊断和治疗中抗体的替代品。然而,预聚合过程的原子级别知识受到限制,其将有助于理性设计更有效的MIP。因此,我们研究了使用计算和实验可能影响所需特异性的蛋白质单体结合相互作用。用作靶蛋白和五种不同丙烯酰胺基单体的肌糖蛋​​白。使用MM-GBSA计算蛋白质结合位点,并使用MM-GBSA计算每个部位的单体的可自由能量。统计热力学分析与原子相互作用的研究促进了MIP重生研究中单体性能的合理化(%Rebind;印迹因素)。 CD光谱学用于确定对肌球蛋白二级结构的单体作用,除了最小的单体(丙烯酰胺)之外的所有单体导致显着变化。观察到不同蛋白质 - 单体结合效应和MIP疗效之间的复杂相互作用。通过合理选择两种不同的共聚单体MIP组合来实现对关键结合特征的假设的验证,其与预测结果产生了实验结果。共聚单体研究表明,统一的非竞争性均匀的单体围绕靶蛋白质的结合是有利的。本研究代表了朝着蛋白质MIPS的二氧化硅设计中未来理性的一步。

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