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严重急性呼吸综合征冠状病毒2核衣壳蛋白的二聚化结构域作为单体时部分无序,并形成高亲和力的动态复合物。

The dimerization domain of SARS CoV 2 Nucleocapsid protein is partially disordered as a monomer and forms a high affinity dynamic complex.

作者信息

Cubuk Jasmine, Incicco J Jeremias, Hall Kathleen B, Holehouse Alex S, Stuchell-Brereton Melissa D, Soranno Andrea

机构信息

Department of Biochemistry and Molecular Biophysics, Washington University in St Louis, 660 Euclid Ave, 63110, Saint Louis, MO, USA.

Center for Biomolecular Condensates, Washington University in St Louis, 1 Brookings Drive, 63130, Saint Louis, MO, USA.

出版信息

bioRxiv. 2024 Sep 25:2024.09.25.614883. doi: 10.1101/2024.09.25.614883.

Abstract

The SARS-CoV-2 Nucleocapsid (N) is a 419 amino acids protein that drives the compaction and packaging of the viral genome. This compaction is aided not only by protein-RNA interactions, but also by protein-protein interactions that contribute to increasing the valence of the nucleocapsid protein. Here, we focused on quantifying the mechanisms that control dimer formation. Single-molecule Förster Resonance Energy Transfer enabled us to investigate the conformations of the dimerization domain in the context of the full-length protein as well as the energetics associated with dimerization. Under monomeric conditions, we observed significantly expanded configurations of the dimerization domain (compared to the folded dimer structure), which are consistent with a dynamic conformational ensemble. The addition of unlabeled protein stabilizes a folded dimer configuration with a high mean transfer efficiency, in agreement with predictions based on known structures. Dimerization is characterized by a dissociation constant of ~ 12 nM at 23 °C and is driven by strong enthalpic interactions between the two protein subunits, which originate from the coupled folding and binding. Interestingly, the dimer structure retains some of the conformational heterogeneity of the monomeric units, and the addition of denaturant reveals that the dimer domain can significantly expand before being completely destabilized. Our findings suggest that the inherent flexibility of the monomer form is required to adopt the specific fold of the dimer domain, where the two subunits interlock with one another. We proposed that the retained flexibility of the dimer form may favor the capture and interactions with RNA, and that the temperature dependence of dimerization may explain some of the previous observations regarding the phase separation propensity of the N protein.

摘要

严重急性呼吸综合征冠状病毒2(SARS-CoV-2)核衣壳蛋白(N)是一种由419个氨基酸组成的蛋白质,它驱动病毒基因组的压缩和包装。这种压缩不仅借助蛋白质-RNA相互作用,还通过有助于增加核衣壳蛋白价态的蛋白质-蛋白质相互作用来实现。在此,我们专注于量化控制二聚体形成的机制。单分子荧光共振能量转移使我们能够在全长蛋白的背景下研究二聚化结构域的构象以及与二聚化相关的能量学。在单体条件下,我们观察到二聚化结构域的构象显著扩展(与折叠的二聚体结构相比),这与动态构象集合一致。添加未标记的蛋白可稳定具有高平均转移效率的折叠二聚体构象,这与基于已知结构的预测相符。二聚化的特征在于在23°C时解离常数约为12 nM,并且由两个蛋白质亚基之间强烈的焓相互作用驱动,这种相互作用源于耦合折叠和结合。有趣的是,二聚体结构保留了单体单元的一些构象异质性,并且添加变性剂表明二聚体结构域在完全不稳定之前可以显著扩展。我们的研究结果表明,单体形式的固有灵活性是采用二聚体结构域特定折叠所必需的,其中两个亚基相互锁定。我们提出,二聚体形式保留的灵活性可能有利于与RNA的捕获和相互作用,并且二聚化的温度依赖性可能解释了先前关于N蛋白相分离倾向的一些观察结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5781/11463464/bb62cebe025e/nihpp-2024.09.25.614883v1-f0001.jpg

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