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Proteoform-Resolved Phosphorylation Dynamics in Kinase Complexes by Hybrid Precision Mass Spectrometry

Krichel, B.; Chan, H.-J.; Bandura, L.; Gao, Z.; Wang, M.-D.; Rogers, H. T.; Mcilwain, S. J.; Uetrecht, C.; Ge, Y.

2025-12-09 biochemistry
10.1101/2025.10.10.681638 bioRxiv
Show abstract

Protein kinases integrate cellular signals through complex phosphorylation cascades, yet resolving how chemical perturbations trigger and modulate these cascades in therapeutic targets remains a major challenge. Here, we dissect AMP-activated protein kinase (AMPK) proteoforms during activation through controlled biochemical reactions with a hybrid mass spectrometry (MS) approach integrating bottom-up MS for site-specific kinetics with top-down proteoform characterization. We reveal that AMPK phosphorylation proceeds through hierarchical cascades rather than binary switching, with dual entry points: canonical CaMKK2-mediated phosphorylation or allosteric activator PF-739 both triggering extensive autophosphorylation with 1-S496 showing highest kinetic priority. Proteoform-resolved analysis uncovers channeled {beta}1-S24/25+S108 co-phosphorylation linking subcellular localization with allosteric responsiveness. Site-directed mutagenesis demonstrates CaMKK2 targets only 1-T183, with all other modifications arising through autophosphorylation. Phosphatase competition reveals asymmetric control where PP1A selectively removes activation-loop phosphorylation while autophosphorylation sites remain protected, establishing persistent regulatory states. Resolving AMPKs temporal kinetics and proteoform architecture during activation enables a proteoform-centric understanding on kinase regulation.

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