Graduate School of Life Sciences, Ritsumeikan University, Kusatsu, Shiga, Japan.
Tokyo Metropolitan University, Hachioji, Tokyo, Japan.
Protein Sci. 2019 Nov;28(11):1993-2003. doi: 10.1002/pro.3734.
Nuclear magnetic resonance (NMR) is a powerful tool to study three-dimensional structures as well as protein conformational fluctuations in solution, but it is compromised by increases in peak widths and missing signals. We previously reported that ubiquitin has two folded conformations, N and N and plus another folded conformation, I, in which some amide group signals of residues 33-41 almost disappeared above 3 kbar at pH 4.5 and 273 K. Thus, well-converged structural models could not be obtained for this region owing to the absence of distance restraints. Here, we reexamine the problem using the ubiquitin Q41N variant as a model for this locally disordered conformation, I. We demonstrate that the variant shows pressure-induced loss of backbone amide group signals at residues 28, 33, 36, and 39-41 like the wild-type, with a similar but smaller effect on CαH and CβH signals. In order to characterize this I structure, we measured paramagnetic relaxation enhancement (PRE) under high pressure to obtain distance restraints, and calculated the structure assisted by Bayesian inference. We conclude that the more disordered I conformation observed at pH 4.0, 278 K, and 2.5 kbar largely retained the N conformation, although the amide groups at residues 33-41 have more heterogeneous conformations and more contact with water, which differ from the N and N states. The PRE-assisted strategy has the potential to improve structural characterization of proteins that lack NMR signals, especially for relatively more open and hydrated protein conformations.
核磁共振(NMR)是一种强大的工具,可用于研究三维结构以及溶液中的蛋白质构象波动,但它受到峰宽增加和信号缺失的影响。我们之前报道过,泛素具有两种折叠构象,N 和 N,以及另一种折叠构象,I,其中一些残基 33-41 的酰胺基团信号在 pH 4.5 和 273 K 时几乎消失。因此,由于缺乏距离约束,无法为该区域获得收敛良好的结构模型。在这里,我们使用泛素 Q41N 变体作为该局部无序构象 I 的模型来重新检查该问题。我们证明该变体与野生型一样,在残基 28、33、36 和 39-41 处表现出压力诱导的骨架酰胺基团信号丢失,对 CαH 和 CβH 信号的影响相似但较小。为了表征这种 I 结构,我们在高压下测量了顺磁弛豫增强(PRE)以获得距离约束,并在贝叶斯推断的辅助下计算了结构。我们得出结论,在 pH 4.0、278 K 和 2.5 kbar 下观察到的更无序的 I 构象在很大程度上保留了 N 构象,尽管残基 33-41 的酰胺基团具有更多异质构象,并且与水的接触更多,这与 N 和 N 状态不同。PRE 辅助策略有可能改善缺乏 NMR 信号的蛋白质的结构表征,特别是对于相对更开放和水合的蛋白质构象。