Department of Chemistry, University of Wisconsin-Madison, Madison, WI, USA.
Department of Biomolecular Chemistry, University of Wisconsin-Madison, Madison, WI, USA.
Nat Commun. 2024 Aug 15;15(1):7016. doi: 10.1038/s41467-024-51274-0.
Owing to its roles in cellular signal transduction, protein phosphorylation plays critical roles in myriad cell processes. That said, detecting and quantifying protein phosphorylation has remained a challenge. We describe the use of a novel mass spectrometer (Orbitrap Astral) coupled with data-independent acquisition (DIA) to achieve rapid and deep analysis of human and mouse phosphoproteomes. With this method, we map approximately 30,000 unique human phosphorylation sites within a half-hour of data collection. The technology is benchmarked to other state-of-the-art MS platforms using both synthetic peptide standards and with EGF-stimulated HeLa cells. We apply this approach to generate a phosphoproteome multi-tissue atlas of the mouse. Altogether, we detect 81,120 unique phosphorylation sites within 12 hours of measurement. With this unique dataset, we examine the sequence, structural, and kinase specificity context of protein phosphorylation. Finally, we highlight the discovery potential of this resource with multiple examples of phosphorylation events relevant to mitochondrial and brain biology.
由于其在细胞信号转导中的作用,蛋白质磷酸化在众多细胞过程中起着关键作用。也就是说,检测和量化蛋白质磷酸化一直是一个挑战。我们描述了一种新型质谱仪(Orbitrap Astral)与数据非依赖性采集(DIA)的结合使用,以实现对人类和小鼠磷酸化组的快速和深度分析。使用这种方法,我们在半小时的数据采集内绘制了大约 30000 个独特的人类磷酸化位点。该技术使用合成肽标准品和 EGF 刺激的 HeLa 细胞与其他最先进的 MS 平台进行基准测试。我们应用这种方法生成了小鼠多组织磷酸化组图谱。总的来说,我们在 12 小时的测量时间内检测到了 81120 个独特的磷酸化位点。有了这个独特的数据集,我们研究了蛋白质磷酸化的序列、结构和激酶特异性背景。最后,我们通过多个与线粒体和大脑生物学相关的磷酸化事件的例子突出了这个资源的发现潜力。