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首页> 外文期刊>Molecular BioSystems >Highly efficient integration of the viral portal proteins from different types of phages into planar bilayers for the black lipid membrane analysis
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Highly efficient integration of the viral portal proteins from different types of phages into planar bilayers for the black lipid membrane analysis

机译:将来自不同类型噬菌体的病毒门户蛋白高效整合到平面双层中,以进行黑色脂质膜分析

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摘要

The planar lipid bilayer technology is a technique that yields incredibly useful structural function information about a single channel protein. It is also currently actively utilized as a powerful platform using biological protein nanopores for the development of single-molecule nanopore sensing technology, as well as ultrafast DNA sequencing technology. The portal protein, GP10, from the bacteriophage Φ29 was the first phage portal protein shown to be successfully inserted into planar bilayer membranes, thereby it may inspire more researchers to apply the techniques to portal proteins from the other bacteriophages. However, the technology is far from perfect since the insertion of the channel proteins into planar bilayer membranes is not only technically difficult but also time-consuming. For the fusion of phage portal proteins, vesicles are typically needed to be reconstituted with the portal proteins to form proteoliposomes. However, most of the phage portal proteins have low solubility, and may self-aggregate during the preparation of the proteoliposomes. Furthermore, the fusion of the formed proteoliposomes is sporadic, unpredictable and varied from person to person. Due to the lack of experimental consistency between labs, the results from different methodologies reported for generating fusible proteoliposomes are highly variable. In this research, we propose a new method for the preparation of the fusible proteoliposomes containing portal proteins from bacteriophages, to circumvent the problems aforementioned. Compared to the conventional methods, this method was able to avoid the protein aggregation issues during the vesicle preparation by eliminating the need for detergents and the subsequent time-consuming step for detergent removal. The proteoliposomes prepared by the method were shown to be more efficiently and rapidly inserted into planar bilayer membranes bathed in different conducting buffer solutions including those with non-electrolytes such as glycerol and PEG. In addition, the method of forming proteoliposomes has significantly extended the shelf life of the proteoliposomes. To further explore its potentials, we have successfully applied the method to the insertion of a mutant portal protein, GP20, from T4 bacteriophage, a hydrophobic portal protein that has not been explored using the planar lipid bilayer membrane technique. The results suggest that this method could be used to prepare proteoliposomes formed by hydrophobic portal proteins from other bacteriophages.
机译:平面脂质双层技术是一种产生关于单通道蛋白的极其有用的结构功能信息的技术。目前,它还被积极用作利用生物蛋白纳米孔的强大平台,用于开发单分子纳米孔传感技术以及超快速DNA测序技术。来自噬菌体Φ29的门禁蛋白GP10是第一个成功插入平面双层膜的噬菌体门禁蛋白,因此它可能会启发更多的研究人员将该技术应用于其他噬菌体的门禁蛋白。然而,由于将通道蛋白插入平面双层膜中不仅在技术上困难而且耗时,因此该技术还远非完美。对于噬菌体门户蛋白的融合,通常需要将囊泡与门户蛋白重构以形成蛋白脂质体。然而,大多数噬菌体门户蛋白具有低溶解度,并且在蛋白脂质体的制备过程中可能自聚集。此外,形成的蛋白脂质体的融合是零星的,不可预测的并且因人而异。由于实验室之间缺乏实验一致性,因此报道的用于生成可熔蛋白脂质体的不同方法的结果差异很大。在这项研究中,我们提出了一种新的方法,用于从噬菌体制备可溶的包含脂质体的蛋白脂质体,以解决上述问题。与常规方法相比,该方法通过消除对去污剂的需要和随后去掉去污剂的耗时步骤,能够避免囊泡制备过程中的蛋白质聚集问题。已显示通过该方法制备的蛋白脂质体可以更有效,更快速地插入到浸入不同导电缓冲液(包括含非电解质(如甘油和PEG)的缓冲液)中的平面双层膜中。另外,形成脂质体的方法大大延长了脂质体的保质期。为了进一步探索其潜力,我们已成功地将该方法应用于从T4噬菌体插入突变的门禁蛋白GP20,T4噬菌体是一种尚未使用平面脂质双层膜技术进行研究的疏水性门禁蛋白。结果表明,该方法可用于制备由其他噬菌体的疏水门蛋白形成的蛋白脂质体。

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  • 来源
    《Molecular BioSystems》 |2016年第2期|480-489|共10页
  • 作者单位

    Department of Chemistry, College of Arts and Sciences, Indiana-Purdue University Fort Wayne, 2101 E. Coliseum Blvd., Fort Wayne, IN 46805-1499, USA;

    Department of Biology, College of Arts and Sciences, Indiana-Purdue University Fort Wayne, 2101 E. Coliseum Blvd., Fort Wayne, IN 46805-1499, USA;

    Department of Chemistry, College of Arts and Sciences, Indiana-Purdue University Fort Wayne, 2101 E. Coliseum Blvd., Fort Wayne, IN 46805-1499, USA;

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