Turewicz Michael, Skagen Christine, Hartwig Sonja, Majda Stephan, Thedinga Kristina, Herwig Ralf, Binsch Christian, Altenhofen Delsi, Ouwens D Margriet, Förster Pia Marlene, Wachtmeister Thorsten, Köhrer Karl, Stermann Torben, Chadt Alexandra, Lehr Stefan, Marschall Tobias, Thoresen G Hege, Al-Hasani Hadi
Institute for Clinical Biochemistry and Pathobiochemistry, German Diabetes Center (DDZ), Leibniz Center for Diabetes Research at the Heinrich Heine University Düsseldorf, Medical Faculty, Düsseldorf, Germany.
German Center for Diabetes Research (DZD e.V.), Munchen-Neuherberg, Germany.
Nat Commun. 2025 Feb 12;16(1):1570. doi: 10.1038/s41467-025-56335-6.
Insulin is a pleiotropic hormone that elicits its metabolic and mitogenic actions through numerous rapid and reversible protein phosphorylations. The temporal regulation of insulin's intracellular signaling cascade is highly complex and insufficiently understood. We conduct a time-resolved analysis of the global insulin-regulated phosphoproteome of differentiated human primary myotubes derived from satellite cells of healthy donors using high-resolution mass spectrometry. Identification and tracking of ~13,000 phosphopeptides over time reveal a highly complex and coordinated network of transient phosphorylation and dephosphorylation events that can be allocated to time-phased regulation of distinct and non-overlapping subcellular pathways. Advanced network analysis combining protein-protein-interaction (PPI) resources and investigation of donor variability in relative phosphosite occupancy over time identifies novel putative candidates in non-canonical insulin signaling and key regulatory nodes that are likely essential for signal propagation. Lastly, we find that insulin-regulated phosphorylation of the pre-catalytic spliceosome complex is associated with acute alternative splicing events in the transcriptome of human skeletal muscle. Our findings highlight the temporal relevance of protein phosphorylations and suggest that synchronized contributions of multiple signaling pathways form part of the circuitry for propagating information to insulin effector sites.
胰岛素是一种多效性激素,它通过众多快速且可逆的蛋白质磷酸化作用引发其代谢和促有丝分裂作用。胰岛素细胞内信号级联反应的时间调控非常复杂,目前尚未得到充分理解。我们使用高分辨率质谱对源自健康供体卫星细胞的分化人原代肌管的全球胰岛素调节磷酸化蛋白质组进行了时间分辨分析。随着时间的推移对约13,000个磷酸肽进行鉴定和追踪,揭示了一个高度复杂且协调的瞬时磷酸化和去磷酸化事件网络,这些事件可归因于不同且不重叠的亚细胞途径的时间阶段调控。结合蛋白质-蛋白质相互作用(PPI)资源的先进网络分析以及对相对磷酸化位点占有率随时间变化的供体变异性研究,确定了非经典胰岛素信号传导中的新型假定候选物以及可能对信号传播至关重要的关键调控节点。最后,我们发现前催化剪接体复合物的胰岛素调节磷酸化与人类骨骼肌转录组中的急性可变剪接事件相关。我们的研究结果突出了蛋白质磷酸化的时间相关性,并表明多种信号通路的同步作用构成了将信息传递到胰岛素效应位点的电路的一部分。