空间分辨dnp辅助核磁共振阐明了α-突触核蛋白在完整活细胞中的构象集合。

Jaka Kragelj, Rupam Ghosh, Yiling Xiao, Rania Dumarieh, Dominique Lagasca, Sakshi Krishna, Kendra K Frederick
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引用次数: 0

摘要

蛋白质α-syn具有多种构象,包括内在无序的单体形式和富含α-螺旋的膜相关形式,后者被认为在细胞膜过程中起重要作用。然而,尽管α-syn对细胞膜有很高的亲和力,但迄今为止,α-syn在细胞内采用α-螺旋形式的证据是间接的。在细胞内,对冷冻样品进行dnp辅助的固态核磁共振有可能直接报告整个构象系。此外,由于DNP极化剂可以均匀或不均匀地分散在整个细胞生物量中,因此在细胞DNP辅助的固态核磁共振实验中,既可以定量地报告结构系综,也可以优先报告具有空间偏差的结构系综。利用dnp辅助的MAS NMR,我们建立了纯化α-syn在膜相关和内在无序形式具有可区分的光谱。当极化剂通过电穿孔进入细胞并均匀分散时,HEK293细胞内的少数α-syn呈高度富含α-螺旋的构象。极化剂空间分布的改变优先增强了靠近细胞外围分子的信号,因此富含α-螺旋的群体优先向细胞外围移动。这证明了选择性地改变DNP极化剂的空间分布可以成为优先报道特定结构集合的有力工具,为更细致地研究蛋白质在细胞不同区域采用的构象铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Spatially resolved DNP-assisted NMR illuminates the conformational ensemble of α-synuclein in intact viable cells.

The protein α-syn adopts a wide variety of conformations including an intrinsically disordered monomeric form and an α-helical rich membrane-associated form that is thought to play an important role in cellular membrane processes. However, despite the high affinity of α-syn for membranes, evidence that the α-helical form is adopted inside cells has been indirect. DNP-assisted solid state NMR on frozen cellular samples can report on protein conformations inside cells. Moreover, by controlling the distribution of the DNP polarization agent throughout the cellular biomass, such experiments can provide quantitative information upon the entire structural ensemble or provide information about spatially resolved sub-populations. Using DNP-assisted magic angle spinning (MAS) NMR we establish that purified α-syn in the membrane-associated and intrinsically disordered forms have distinguishable spectra. We then introduced isotopically labeled monomeric α-syn into cells. When the DNP polarization agent is dispersed homogenously throughout the cell, we found that a minority of the α-syn inside cells adopted a highly α-helical rich conformation. When the DNP polarization agent is peripherally localized, we found that the α-helical rich conformation predominates. Thus, we provide direct evidence that α-helix rich conformations of α-syn are adopted near the cellular periphery inside cells under physiological conditions. Moreover, we demonstrate how selectively altering the spatial distribution of the DNP polarization agent can be a powerful tool to observe spatially distinct structural ensembles. This approach paves the way for more nuanced investigations into the conformations that proteins adopt in different areas of the cell.

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