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解析三部分蛋白质系统中多个位点磷酸化、相互作用动态和构象转变之间的相互作用。

Deciphering the Interplay among Multisite Phosphorylation, Interaction Dynamics, and Conformational Transitions in a Tripartite Protein System.

机构信息

Biomolecular Mass Spectrometry and Proteomics, Bijvoet Center for Biomolecular Research and Utrecht Institute for Pharmaceutical Sciences, University of Utrecht, Padualaan 8, 3584CH Utrecht, The Netherlands; Netherlands Proteomics Center, Padualaan 8, 3584CH Utrecht, The Netherlands.

Department of Structural Cell Biology, Max Planck Institute of Biochemistry , Am Klopferspitz 18, 82152 Martinsried, Germany.

出版信息

ACS Cent Sci. 2016 Jul 27;2(7):445-55. doi: 10.1021/acscentsci.6b00053. Epub 2016 Jun 10.

Abstract

Multisite phosphorylation is a common pathway to regulate protein function, activity, and interaction pattern in vivo, but routine biochemical analysis is often insufficient to identify the number and order of individual phosphorylation reactions and their mechanistic impact on the protein behavior. Here, we integrate complementary mass spectrometry (MS)-based approaches to characterize a multisite phosphorylation-regulated protein system comprising Polo-like kinase 1 (Plk1) and its coactivators Aurora kinase A (Aur-A) and Bora, the interplay of which is essential for mitotic entry after DNA damage-induced cell cycle arrest. Native MS and cross-linking-MS revealed that Aur-A/Bora-mediated Plk1 activation is accompanied by the formation of Aur-A/Bora and Plk1/Bora heterodimers. We found that the Aur-A/Bora interaction is independent of the Bora phosphorylation state, whereas the Plk1/Bora interaction is dependent on extensive Bora multisite phosphorylation. Bottom-up and top-down proteomics analyses showed that Bora multisite phosphorylation proceeds via a well-ordered sequence of site-specific phosphorylation reactions, whereby we could reveal the involvement of up to 16 phosphorylated Bora residues. Ion mobility spectrometry-MS demonstrated that this multisite phosphorylation primes a substantial structural rearrangement of Bora, explaining the interdependence between extensive Bora multisite phosphorylation and Plk1/Bora complex formation. These results represent a first benchmark of our multipronged MS strategy, highlighting its potential to elucidate the mechanistic and structural implications of multisite protein phosphorylation.

摘要

多位点磷酸化是调节蛋白质功能、活性和相互作用模式的常见途径,但常规生化分析通常不足以确定单个磷酸化反应的数量和顺序及其对蛋白质行为的机制影响。在这里,我们整合了互补的基于质谱(MS)的方法来描述一个多磷酸化调控蛋白系统,该系统包括 Polo 样激酶 1(Plk1)及其共激活因子 Aurora 激酶 A(Aur-A)和 Bora,它们之间的相互作用对于 DNA 损伤诱导的细胞周期阻滞后有丝分裂进入是必不可少的。天然 MS 和交联 MS 表明,Aur-A/Bora 介导的 Plk1 激活伴随着 Aur-A/Bora 和 Plk1/Bora 异二聚体的形成。我们发现 Aur-A/Bora 相互作用不依赖于 Bora 的磷酸化状态,而 Plk1/Bora 相互作用依赖于广泛的 Bora 多位点磷酸化。自上而下和自下而上的蛋白质组学分析表明,Bora 多位点磷酸化通过一系列有序的特异性磷酸化反应进行,由此我们可以揭示多达 16 个磷酸化 Bora 残基的参与。离子淌度质谱-MS 表明,这种多磷酸化使 Bora 发生了实质性的结构重排,解释了广泛的 Bora 多磷酸化和 Plk1/Bora 复合物形成之间的相互依赖关系。这些结果代表了我们多管齐下的 MS 策略的第一个基准,突出了其阐明多磷酸化蛋白的机制和结构影响的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d5d1/4965854/8b843c9d9ec9/oc-2016-00053m_0002.jpg

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