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Rapid and Robust Polyprotein Production Facilitates Single-Molecule Mechanical Characterization of β-Barrel Assembly Machinery Polypeptide Transport Associated Domains.

机译:快速和稳健的多蛋白生产促进β-桶装配机械多肽运输相关结构域的单分子力学表征。

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摘要

Single-molecule force spectroscopy by atomic force microscopy exploits the use of multimeric protein constructs, namely, polyproteins, to decrease the impact of nonspecific interactions, to improve data accumulation, and to allow the accommodation of benchmarking reference domains within the construct. However, methods to generate such constructs are either time- and labor-intensive or lack control over the length or the domain sequence of the obtained construct. Here, we describe an approach that addresses both of these shortcomings that uses Gibson assembly (GA) to generate a defined recombinant polyprotein rapidly using linker sequences. To demonstrate the feasibility of this approach, we used GA to make a polyprotein composed of alternating domains of I27 and TmCsp, (I27-TmCsp)3-I27)(GA), and showed the mechanical fingerprint, mechanical strength, and pulling speed dependence are the same as an analogous polyprotein constructed using the classical approach. After this benchmarking, we exploited this approach to facilitiate the mechanical characterization of POTRA domain 2 of BamA from E. coli (EcPOTRA2) by assembling the polyprotein (I27-EcPOTRA2)3-I27(GA). We show that, as predicted from the α + β topology, EcPOTRA2 domains are mechanically robust over a wide range of pulling speeds. Furthermore, we identify a clear correlation between mechanical robustness and brittleness for a range of other α + β proteins that contain the structural feature of proximal terminal β-strands in parallel geometry. We thus demonstrate that the GA approach is a powerful tool, as it circumvents the usual time- and labor-intensive polyprotein production process and allows for rapid production of new constructs for single-molecule studies. As shown for EcPOTRA2, this approach allows the exploration of the mechanical properties of a greater number of proteins and their variants. This improves our understanding of the relationship between structure and mechanical strength, increasing our ability to design proteins with tailored mechanical properties.
机译:通过原子力显微镜的单分子力光谱法利用多聚体蛋白质构建体即多蛋白的使用,以减少非特异性相互作用的影响,改善数据积累,并允许在构建体中容纳基准参考域。然而,产生这种构建体的方法要么费时费力,要么缺乏对所获得的构建体的长度或结构域序列的控制。在这里,我们描述了一种解决这些缺点的方法,该方法使用吉布森装配(GA)使用接头序列快速生成定义的重组多蛋白。为了证明这种方法的可行性,我们使用GA制备了由I27和TmCsp((I27-TmCsp)3-I27)(GA)交替域组成的多蛋白,并显示了机械指纹图,机械强度和拉速依赖性与使用经典方法构建的类似多蛋白相同。在进行此基准测试后,我们通过组装多蛋白(I27-EcPOTRA2)3-I27(GA)来利用这种方法来促进大肠杆菌BamA的POTRA结构域2(EcPOTRA2)的机械表征。我们表明,正如从α+β拓扑结构预测的那样,EcPOTRA2域在很宽的拉动速度范围内具有机械鲁棒性。此外,我们确定了一系列其他α+β蛋白质的机械鲁棒性和脆性之间的明显相关性,这些蛋白质包含平行几何结构中近端β链的结构特征。因此,我们证明了GA方法是一种强大的工具,因为它规避了通常的时间和劳动密集型多蛋白生产过程,并允许快速生产用于单分子研究的新构建体。如EcPOTRA2所示,这种方法可以探索更多蛋白质及其变体的机械特性。这提高了我们对结构与机械强度之间关系的理解,提高了我们设计具有定制机械性能的蛋白质的能力。

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