Institut Fédératif de Recherches 147, CNRS UMR 8576, Université de Lille-Nord de France, Villeneuve d'Ascq, France.
J Biomol NMR. 2013 Apr;55(4):323-37. doi: 10.1007/s10858-013-9716-z. Epub 2013 Mar 2.
The Pin1 protein plays a critical role in the functional regulation of the hyperphosphorylated neuronal Tau protein in Alzheimer's disease and is by itself regulated by phosphorylation. We have used Nuclear Magnetic Resonance (NMR) spectroscopy to both identify the PKA phosphorylation site in the Pin1 WW domain and investigate the functional consequences of this phosphorylation. Detection and identification of phosphorylation on serine/threonine residues in a globular protein, while mostly occurring in solvent-exposed flexible loops, does not lead to chemical shift changes as obvious as in disordered proteins and hence does not necessarily shift the resonances outside the spectrum of the folded protein. Other complications were encountered to characterize the extent of the phosphorylation, as part of the (1)H,(15)N amide resonances around the phosphorylation site are specifically broadened in the unphosphorylated state. Despite these obstacles, NMR spectroscopy was an efficient tool to confirm phosphorylation on S16 of the WW domain and to quantify the level of phosphorylation. Based on this analytical characterization, we show that WW phosphorylation on S16 abolishes its binding capacity to a phosphorylated Tau peptide. A reduced conformational heterogeneity and flexibility of the phospho-binding loop upon S16 phosphorylation could account for part of the decreased affinity for its phosphorylated partner. Additionally, a structural model of the phospho-WW obtained by molecular dynamics simulation and energy minimization suggests that the phosphate moiety of phospho-S16 could compete with the phospho-substrate.
Pin1 蛋白在阿尔茨海默病中高度磷酸化的神经元 Tau 蛋白的功能调节中起着关键作用,并且自身受磷酸化调节。我们使用核磁共振(NMR)光谱技术来鉴定 Pin1 WW 结构域中的 PKA 磷酸化位点,并研究该磷酸化的功能后果。在球状蛋白中检测和鉴定丝氨酸/苏氨酸残基的磷酸化,虽然主要发生在溶剂暴露的柔性环中,但不会像无规卷曲蛋白那样导致明显的化学位移变化,因此不一定会将共振峰移到折叠蛋白的谱外。为了表征磷酸化的程度,还遇到了其他一些复杂情况,因为在未磷酸化状态下,环绕磷酸化位点的(1)H,(15)N 酰胺共振部分会特异性变宽。尽管存在这些障碍,但 NMR 光谱仍然是一种有效的工具,可以确认 WW 结构域上 S16 的磷酸化,并定量磷酸化水平。基于这种分析特性,我们表明 WW 结构域上 S16 的磷酸化会使其丧失与磷酸化 Tau 肽的结合能力。S16 磷酸化后磷酸结合环的构象异质性和灵活性降低可能是其对磷酸化伴侣亲和力降低的部分原因。此外,通过分子动力学模拟和能量最小化获得的磷酸化 WW 的结构模型表明,磷酸化 S16 的磷酸部分可以与磷酸化底物竞争。