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在海洋栖热菌精氨酸结合蛋白中进行结构域交换解析:结构柔性如何补偿不稳定性。

Domain swapping dissection in Thermotoga maritima arginine binding protein: How structural flexibility may compensate destabilization.

机构信息

IRCCS SDN, 80143 Napoli, Italy.

Institute of Biostructures and Bioimaging, CNR, Via Mezzocannone 16, I-80134 Napoli, Italy.

出版信息

Biochim Biophys Acta Proteins Proteom. 2018 Sep;1866(9):952-962. doi: 10.1016/j.bbapap.2018.05.016. Epub 2018 May 31.

DOI:10.1016/j.bbapap.2018.05.016
PMID:29860047
Abstract

Thermotoga maritima Arginine Binding Protein (TmArgBP) is a valuable candidate for arginine biosensing in diagnostics. This protein is endowed with unusual structural properties that include an extraordinary thermal/chemical stability, a domain swapped structure that undergoes large tertiary and quaternary structural transition, and the ability to form non-canonical oligomeric species. As the intrinsic stability of TmArgBP allows for extensive protein manipulations, we here dissected its structure in two parts: its main body deprived of the swapping fragment (TmArgBP) and the C-terminal peptide corresponding to the helical swapping element. Both elements have been characterized independently or in combination using a repertoire of biophysical/structural techniques. Present investigations clearly indicate that TmArgBP represents a better scaffold for arginine sensing compared to the wild-type protein. Moreover, our data demonstrate that the ligand-free and the ligand-bound forms respond very differently to this helix deletion. This drastic perturbation has an important impact on the ligand-bound form of TmArgBP stability whereas it barely affects its ligand-free state. The crystallographic structures of these forms provide a rationale to this puzzling observation. Indeed, the arginine-bound state is very rigid and virtually unchanged upon protein truncation. On the other hand, the flexible ligand-free TmArgBP is able to adopt a novel state as a consequence of the helix deletion. Therefore, the flexibility of the ligand-free form endows this state with a remarkable robustness upon severe perturbations. In this scenario, TmArgBP dissection highlights an intriguing connection between destabilizing/stabilizing effects and the overall flexibility that could operate also in other proteins.

摘要

海洋栖热菌精氨酸结合蛋白(TmArgBP)是诊断中精氨酸生物传感的有价值的候选物。该蛋白质具有不寻常的结构特性,包括非凡的热/化学稳定性、结构域交换结构,其经历大的三级和四级结构转变,以及形成非规范寡聚体的能力。由于 TmArgBP 的固有稳定性允许进行广泛的蛋白质操作,我们在此将其结构分为两部分:其主体部分(无交换片段的 TmArgBP)和对应于螺旋交换元件的 C 末端肽。这两个元件都使用一系列生物物理/结构技术进行了独立或组合的表征。目前的研究清楚地表明,与野生型蛋白质相比,TmArgBP 代表了更好的精氨酸传感支架。此外,我们的数据表明,配体结合和无配体结合形式对这种螺旋缺失的反应非常不同。这种剧烈的扰动对 TmArgBP 配体结合形式的稳定性有重要影响,而对其无配体状态的影响几乎可以忽略不计。这些形式的晶体结构为这一令人费解的观察结果提供了依据。事实上,精氨酸结合状态非常刚性,几乎不变,在蛋白质截断后几乎不变。另一方面,灵活的无配体 TmArgBP 能够由于螺旋缺失而采用新的状态。因此,无配体形式的灵活性赋予了这种状态在严重扰动下的显著稳健性。在这种情况下,TmArgBP 的剖析突出了失稳/稳定效应与整体灵活性之间的有趣联系,这种联系也可能存在于其他蛋白质中。

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