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Characterization and Purification of Polydisperse Reconstituted Lipoproteins and Nanolipoprotein Particles

机译:多分散重组脂蛋白和纳米脂蛋白颗粒的表征和纯化

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Heterogeneity is a fact that plagues the characterization and application of many self-assembled biological constructs. The importance of obtaining particle homogeneity in biological assemblies is a critical goal, as bulk analysis tools often require identical species for reliable interpretation of the results—indeed, important tools of analysis such as x-ray diffraction typically require over 90% purity for effectiveness. This issue bears particular importance in the case of lipoproteins. Lipid-binding proteins known as apolipoproteins can self assemble with liposomes to form reconstituted high density lipoproteins (rHDLs) or nanolipoprotein particles (NLPs) when used for biotechnology applications such as the solubilization of membrane proteins. Typically, the apolipoprotein and phospholipids reactants are self assembled and even with careful assembly protocols the product often contains heterogeneous particles. In fact, size polydispersity in rHDLs and NLPs published in the literature are frequently observed, which may confound the accurate use of analytical methods. In this article, we demonstrate a procedure for producing a pure, monodisperse NLP subpopulation from a polydisperse self-assembly using size exclusion chromatography (SEC) coupled with high resolution particle imaging by atomic force microscopy (AFM). In addition, NLPs have been shown to self assemble both in the presence and absence of detergents such as cholate, yet the effects of cholate on NLP polydispersity and separation has not been systematically examined. Therefore, we examined the separation properties of NLPs assembled in both the absence and presence of cholate using SEC and native gel electrophoresis. From this analysis, NLPs prepared with and without cholate showed particles with well defined diameters spanning a similar size range. However, cholate was shown to have a dramatic affect on NLP separation by SEC and native gel electrophoresis. Furthermore, under conditions where different sized NLPs were not sufficiently separated or purified by SEC, AFM was used to deconvolute the elution pattern of different sized NLPs. From this analysis we were able to purify an NLP subpopulation to 90% size homogeneity by taking extremely fine elutions from the SEC. With this purity, we generate high quality NLP crystals that were over 100 μm in size with little precipitate, which could not be obtained utilizing the traditional size exclusion techniques. This purification procedure and the methods for validation are broadly applicable to other lipoprotein particles.
机译:异质性困扰着许多自组装生物构建体的表征和应用。在生物组装中获得颗粒均质性的重要性是一个关键目标,因为大量分析工具通常需要使用相同的物种才能可靠地解释结果-实际上,重要的分析工具(例如X射线衍射)通常需要90%的纯度才能有效。对于脂蛋白,这个问题尤为重要。当用于生物技术应用(例如膜蛋白的增溶)时,称为载脂蛋白的脂质结合蛋白可与脂质体自组装形成重组的高密度脂蛋白(rHDL)或纳米脂蛋白颗粒(NLP)。通常,载脂蛋白和磷脂反应物是自组装的,即使采用仔细的组装方案,产品通常也包含异质颗粒。实际上,经常观察到在文献中发表的rHDL和NLP中的大小多分散性,这可能会混淆分析方法的准确使用。在本文中,我们演示了使用尺寸排阻色谱(SEC)与通过原子力显微镜(AFM)进行的高分辨率颗粒成像相结合的多分散自组装生产纯净,单分散NLP亚群的程序。另外,已经显示在存在和不存在去污剂如胆酸盐的情况下,NLP都可以自组装,但是尚未系统地检查胆酸盐对NLP多分散性和分离的影响。因此,我们使用SEC和天然凝胶电泳检查了在不存在和存在胆酸盐的情况下组装的NLP的分离特性。根据该分析,制备有或没有胆酸盐的NLP均显示出具有明确定义的直径的颗粒,其粒径范围相似。然而,显示出胆酸盐对通过SEC和天然凝胶电泳进行的NLP分离具有显着影响。此外,在不同大小的NLP不能通过SEC充分分离或纯化的条件下,AFM用于反卷积不同大小的NLP的洗脱模式。通过该分析,我们可以通过从SEC进行极精细的洗脱,将NLP亚群纯化到90%大小的同质性。以这种纯度,我们生成了尺寸超过100μm且几乎没有沉淀的高质量NLP晶体,这是使用传统的尺寸排阻技术无法获得的。该纯化程序和验证方法广泛适用于其他脂蛋白颗粒。

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