首页> 美国卫生研究院文献>Acta Crystallographica Section F: Structural Biology and Crystallization Communications >Systematic analysis of protein–detergent complexes applying dynamic light scattering to optimize solutions for crystallization trials
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Systematic analysis of protein–detergent complexes applying dynamic light scattering to optimize solutions for crystallization trials

机译:利用动态光散射对蛋白质洗涤剂复合物进行系统分析以优化结晶试验的解决方案

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摘要

Detergents are widely used for the isolation and solubilization of membrane proteins to support crystallization and structure determination. Detergents are amphiphilic molecules that form micelles once the characteristic critical micelle concentration (CMC) is achieved and can solubilize membrane proteins by the formation of micelles around them. The results are presented of a study of micelle formation observed by in situ dynamic light-scattering (DLS) analyses performed on selected detergent solutions using a newly designed advanced hardware device. DLS was initially applied in situ to detergent samples with a total volume of approximately 2 µl. When measured with DLS, pure detergents show a monodisperse radial distribution in water at concentrations exceeding the CMC. A series of all-trans n-alkyl-β-d-maltopyranosides, from n-hexyl to n-tetradecyl, were used in the investigations. The results obtained verify that the application of DLS in situ is capable of distinguishing differences in the hydrodynamic radii of micelles formed by detergents differing in length by only a single CH2 group in their aliphatic tails. Subsequently, DLS was applied to investigate the distribution of hydrodynamic radii of membrane proteins and selected water-insoluble proteins in presence of detergent micelles. The results confirm that stable protein–detergent complexes were prepared for (i) bacteriorhodopsin and (ii) FetA in complex with a ligand as examples of transmembrane proteins. A fusion of maltose-binding protein and the Duck hepatitis B virus X protein was added to this investigation as an example of a non-membrane-associated protein with low water solubility. The increased solubility of this protein in the presence of detergent could be monitored, as well as the progress of proteolytic cleavage to separate the fusion partners. This study demonstrates the potential of in situ DLS to optimize solutions of protein–detergent complexes for crystallization applications.
机译:洗涤剂被广泛用于膜蛋白的分离和溶解,以支持结晶和结构测定。洗涤剂是两亲性分子,一旦达到特征性的临界胶束浓度(CMC),它们就会形成胶束,并通过在胶束周围形成胶束来溶解膜蛋白。结果是通过使用新设计的先进硬件设备对选定的洗涤剂溶液进行原位动态光散射(DLS)分析而观察到的胶束形成的研究结果。首先将DLS原位应用于洗涤剂样品,其总体积约为2μl。当用DLS测量时,纯洗涤剂在浓度超过CMC时在水中呈现出单分散的径向分布。在研究中使用了从正己基到正十四烷基的一系列全反式正烷基-β-d-麦芽吡喃糖苷。获得的结果证明,原位施用DLS能够区分由长度不同的洗涤剂形成的胶束的流体动力学半径的差异,洗涤剂的长度仅在脂肪族尾部中只有一个CH2基团。随后,DLS用于研究在去污胶束存在下膜蛋白和所选水不溶性蛋白的流体动力学半径的分布。结果证实,已为(i)细菌视紫红质和(ii)与配体配合的FetA(例如跨膜蛋白)制备了稳定的蛋白质洗涤剂复合物。麦芽糖结合蛋白和鸭乙型肝炎病毒X蛋白的融合体被添加到这项研究中,作为具有低水溶性的非膜相关蛋白的一个例子。可以监测在去污剂存在下该蛋白质增加的溶解度,以及蛋白水解切割分离融合伴侣的过程。这项研究证明了原位DLS在优化用于结晶应用的蛋白质洗涤剂复合物溶液方面的潜力。

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