SARS-CoV-2 NSP1 C-terminal (residues 131–180) is an intrinsically disordered region in isolation

Amit Kumar , Ankur Kumar , Prateek Kumar , Neha Garg , Rajanish Giri
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引用次数: 14

Abstract

The NSP1– C terminal structure in complex with ribosome using cryo-EM is available now, and the N-terminal region structure in isolation is also deciphered in literature. However, as a reductionist approach, the conformation of NSP1– C terminal region (NSP1-CTR; amino acids 131–180) has not been studied in isolation. We found that NSP1-CTR conformation is disordered in an aqueous solution. Further, we examined the conformational propensity towards alpha-helical structure using trifluoroethanol, we observed induction of helical structure conformation using CD spectroscopy. Additionally, in SDS, NSP1-CTR shows a conformational change from disordered to ordered, possibly gaining alpha-helix in part. But in the presence of neutral lipid DOPC, a slight change in conformation is observed, which implies the possible role of hydrophobic interaction and electrostatic interaction on the conformational changes of NSP1. Fluorescence-based studies have shown a blue shift and fluorescence quenching in the presence of SDS, TFE, and lipid vesicles. In agreement with these results, fluorescence lifetime and fluorescence anisotropy decay suggest a change in conformational dynamics. The zeta potential studies further validated that the conformational dynamics are primarily because of hydrophobic interaction. These experimental studies were complemented through Molecular Dynamics (MD) simulations, which have shown a good correlation and testifies our experiments. We believe that the intrinsically disordered nature of the NSP1-CTR will have implications for enhanced molecular recognition feature properties of this IDR, which may add disorder to order transition and disorder-based binding promiscuity with its interacting proteins.

Abstract Image

SARS-CoV-2 NSP1 c端(残基131-180)是一个内在无序区
目前,利用冷冻电镜技术已经可以获得与核糖体复合物的NSP1 - C末端结构,而分离的n端区域结构也有文献报道。然而,作为还原论的方法,NSP1-C末端区(NSP1- ctr;氨基酸(131-180)尚未进行分离研究。我们发现NSP1-CTR构象在水溶液中是无序的。此外,我们用三氟乙醇检测了对α -螺旋结构的构象倾向,我们用CD光谱观察了螺旋结构构象的诱导。此外,在SDS中,NSP1-CTR表现出从无序到有序的构象变化,可能部分获得了α -螺旋。但在中性脂质DOPC的存在下,NSP1的构象发生了轻微的变化,这暗示了疏水相互作用和静电相互作用对NSP1构象变化的可能作用。基于荧光的研究表明,在SDS、TFE和脂质囊泡存在时,蓝移和荧光猝灭。与这些结果一致,荧光寿命和荧光各向异性衰减表明构象动力学发生了变化。zeta电位的研究进一步证实了构象动力学主要是由于疏水相互作用。这些实验研究通过分子动力学(MD)模拟进行了补充,结果显示出良好的相关性,证明了我们的实验。我们认为,NSP1-CTR的内在无序性将影响该IDR的增强分子识别特征特性,这可能会增加有序转换的无序性以及与其相互作用蛋白的基于无序的结合混杂性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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