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Predictive approach for protein aggregation: Correlation of protein surface characteristics and conformational flexibility to protein aggregation propensity

机译:蛋白质聚集预测方法:蛋白质表面特征的相关性和蛋白质聚集倾向的构象灵活性

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摘要

The aggregation of proteins became one of the major challenges in the development of biopharmaceuticals since the formation of aggregates can affect drug quality and immunogenicity. However, aggregation mechanisms are highly complex and the investigation requires cost, time, and material intensive experimental effort. In the present work, the predictive power of protein characteristics for the phase behavior of three different proteins which are very similar in size and structure was studied. In particular, the surface hydrophobicity, zeta potential, and conformational flexibility of human lysozyme, lysozyme from chicken egg white, and -lactalbumin at pH 3, 5, 7, and 9 were assessed and examined for correlation with experimental stability studies focusing on protein phase behavior induced by sodium chloride and ammonium sulfate. The molecular dynamics (MD) simulation based study of the conformational flexibility without precipitants was able to identify highly flexible protein regions which could be associated to the less regular secondary structure elements and random coiled and terminal regions in particular. Conformational flexibility of the entire protein structure and protein surface hydrophobicity could be correlated to differing aggregation propensities among the studied proteins and could be identified to be applicable for prediction of protein phase behavior in aqueous solution without precipitants. For prediction of protein phase behavior and aggregation propensity in aqueous solution with precipitants, protein flexibility was further studied in dependency of salt concentration and species by means of human lysozyme. Even though the results of the salt dependent MD simulations could not be shown to be sufficient for prediction of salt depending phase behavior, this study revealed a more pronounced destabilizing effect of ammonium sulfate in comparison to sodium chloride and thus, was found to be in good agreement with theoretical considerations along the Hofmeister series as well as experimentally evaluated phase behavior. Biotechnol. Bioeng. 2017;114: 1170-1183. (c) 2016 Wiley Periodicals, Inc.
机译:由于聚集体的形成可以影响药物质量和免疫原性,蛋白质的聚集成为生物制药的主要挑战之一。然而,聚集机制非常复杂,调查需要成本,时间和材料密集的实验努力。在本作工作中,研究了三种不同蛋白质的相行为的预测力,其尺寸和结构非常相似。特别地,评估了人溶菌酶,来自鸡蛋白色的溶菌酶的表面疏水性,Zeta电位和构象柔韧性,并检查了pH 3,5,7和9的-Actal-umumin,用于关注蛋白质相的实验稳定性研究的相关性氯化钠和硫酸铵诱导的行为。基于分子动力学(MD)模拟的基于构象柔韧性的研究能够识别高度柔性的蛋白质区域,该蛋白质区域可以与较少的常规二级结构元件和特别是随机盘绕和终端区域相关联。整个蛋白质结构和蛋白质表面疏水性的构象灵活性可以与所研究的蛋白质中的不同聚集性相关,并且可以鉴定用于预测在没有沉淀物的水溶液中的蛋白质相行为。为了预测沉淀剂水溶液中的蛋白质相行为和聚集倾向,通过人溶菌酶依赖于盐浓度和物种进一步研究蛋白质柔性。尽管含盐依赖性MD模拟的结果不能被证明是足以预测盐的预测,但依赖于相行为,揭示了与氯化钠相比硫酸铵的更明显的稳定作用,因此发现良好与HofMeister系列的理论考虑局的协议以及通过实验评估的阶段行为。 Biotechnol。生物。 2017; 114:1170-1183。 (c)2016 Wiley期刊,Inc。

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