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Mechanical Stability of a Small Highly-Luminescent Engineered Protein NanoLuc

机译:小型高发扬声器蛋白纳米的机械稳定性

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摘要

NanoLuc is a bioluminescent protein recently engineered for applications in molecular imaging and cellular reporter assays. Compared to other bioluminescent proteins used for these applications, like Firefly Luciferase and Renilla Luciferase, it is ~150 times brighter, more thermally stable, and smaller. Yet, no information is known with regards to its mechanical properties, which could introduce a new set of applications for this unique protein, such as a novel biomaterial or as a substrate for protein activity/refolding assays. Here, we generated a synthetic NanoLuc derivative protein that consists of three connected NanoLuc proteins flanked by two human titin I91 domains on each side and present our mechanical studies at the single molecule level by performing Single Molecule Force Spectroscopy (SMFS) measurements. Our results show each NanoLuc repeat in the derivative behaves as a single domain protein, with a single unfolding event occurring on average when approximately 72 pN is applied to the protein. Additionally, we performed cyclic measurements, where the forces applied to a single protein were cyclically raised then lowered to allow the protein the opportunity to refold: we observed the protein was able to refold to its correct structure after mechanical denaturation only 16.9% of the time, while another 26.9% of the time there was evidence of protein misfolding to a potentially non-functional conformation. These results show that NanoLuc is a mechanically moderately weak protein that is unable to robustly refold itself correctly when stretch-denatured, which makes it an attractive model for future protein folding and misfolding studies.
机译:纳米是一种生物发光蛋白,最近用于分子成像和细胞报告分析中的应用。与用于这些应用的其他生物发光蛋白相比,如萤火虫荧光素酶和雷农纤维素酶,它是致敏捷,更热稳定的〜150倍,更小。然而,在其机械性能方面不知道任何信息,这可以引入这种独特的蛋白质的新应用,例如新的生物材料或作为蛋白质活性/重折叠测定的基材。这里,我们产生了一种合成的纳米衍生物蛋白,其由每一侧的两个人三肽I91结构域侧翼的三个连接的纳米蛋白组成,并通过进行单分子力光谱(SMF)测量来在单个分子水平上呈现我们的机械研究。我们的结果表明,衍生物中的每种纳米重复表现为单个结构域蛋白质,当蛋白质施加约72pn时,平均发生的单个展开事件发生。另外,我们进行了循环测量,其中施加到单个蛋白质的力循环升高,然后降低以使蛋白质更加重新折叠:我们观察到蛋白质能够在机械变性之后恢复其正确的结构,仅为16.9% ,而另外26.9%的时间有证据表明蛋白质被误用为潜在的非功能性构象。这些结果表明,当拉伸变性时,Nanoluc是一种机械中等弱蛋白质,无法正确地重叠本身,这使其成为未来蛋白质折叠和错误折叠研究的有吸引力的模型。

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