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The Chaperonin GroEL: A Versatile Tool for Applied Biotechnology Platforms

机译:伴侣GroEL:适用于应用生物技术平台的多功能工具

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The nucleotide-free chaperonin GroEL is capable of capturing transient unfolded or partially unfolded states that flicker in and out of existence due to large-scale protein dynamic vibrational modes. In this work, three short vignettes are presented to highlight our continuing advances in the application of GroEL biosensor biolayer interferometry (BLI) technologies and highlights expanded uses of GroEL as a molecular scaffold for electron microscopy determination. The first example presents an extension of the ability to detect dynamic pre-aggregate transients in therapeutic protein solutions where the assessment of the kinetic stability of any folded protein or, as shown herein, quantitative detection of mutant-type protein when mixed with wild-type native counterparts. Secondly, using a BLI denaturation pulse assay with GroEL, the comparison of kinetically controlled denaturation isotherms of various von Willebrand factor (vWF) triple A domain mutant-types is shown. These mutant-types are single point mutations that locally disorder the A1 platelet binding domain resulting in one gain of function and one loss of function phenotype. Clear, separate, and reproducible kinetic deviations in the mutant-type isotherms exist when compared with the wild-type curve. Finally, expanding on previous electron microscopy (EM) advances using GroEL as both a protein scaffold surface and a release platform, examples are presented where GroEL-protein complexes can be imaged using electron microscopy tilt series and the low-resolution structures of aggregation-prone proteins that have interacted with GroEL. The ability of GroEL to bind hydrophobic regions and transient partially folded states allows one to employ this unique molecular chaperone both as a versatile structural scaffold and as a sensor of a protein’s folded states.
机译:不含核苷酸的伴侣蛋白GroEL能够捕获由于大规模蛋白质动态振动模式而忽隐忽现的瞬时未折叠或部分未折叠状态。在这项工作中,提出了三个简短的短文,以突出我们在GroEL生物传感器生物层干涉测量(BLI)技术应用中的持续进步,并突出了GroEL作为电子显微镜测定分子支架的广泛用途。第一个例子展示了在治疗性蛋白溶液中检测动态预聚集瞬变的能力的扩展,其中评估了任何折叠蛋白的动力学稳定性,或者如本文所示,与野生型混合时定量检测突变型蛋白本地同行。其次,使用具有GroEL的BLI变性脉冲测定法,比较了各种von Willebrand因子(vWF)三重A结构域突变体类型的动力学控制的变性等温线的比较。这些突变型是单点突变,局部突变A1血小板结合域,导致一种功能增加和一种功能丧失的表型。与野生型曲线相比,突变型等温线中存在清晰,分离和可重现的动力学偏差。最后,扩展了使用GroEL作为蛋白质支架表面和释放平台的先前电子显微镜(EM)的进展,并提供了一些示例,其中可以使用电子显微镜倾斜系列和易聚集的低分辨率结构对GroEL-蛋白质复合物进行成像。与GroEL相互作用的蛋白质。 GroEL结合疏水区域和瞬时部分折叠状态的能力使人们可以将这种独特的分子伴侣用作通用的结构支架和蛋白质折叠状态的传感器。

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