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Data‐driven modeling reconciles kinetics of ERK phosphorylation,localization, and activity states
Authors:Shoeb Ahmed  Kyle G Grant  Laura E Edwards  Anisur Rahman  Murat Cirit  Michael B Goshe  Jason M Haugh
Institution:1. Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, NC, USA;2. Department of Molecular and Structural Biochemistry, North Carolina State University, Raleigh, NC, USA
Abstract:The extracellular signal‐regulated kinase (ERK) signaling pathway controls cell proliferation and differentiation in metazoans. Two hallmarks of its dynamics are adaptation of ERK phosphorylation, which has been linked to negative feedback, and nucleocytoplasmic shuttling, which allows active ERK to phosphorylate protein substrates in the nucleus and cytosol. To integrate these complex features, we acquired quantitative biochemical and live‐cell microscopy data to reconcile phosphorylation, localization, and activity states of ERK. While maximal growth factor stimulation elicits transient ERK phosphorylation and nuclear translocation responses, ERK activities available to phosphorylate substrates in the cytosol and nuclei show relatively little or no adaptation. Free ERK activity in the nucleus temporally lags the peak in nuclear translocation, indicating a slow process. Additional experiments, guided by kinetic modeling, show that this process is consistent with ERK's modification of and release from nuclear substrate anchors. Thus, adaptation of whole‐cell ERK phosphorylation is a by‐product of transient protection from phosphatases. Consistent with this interpretation, predictions concerning the dose‐dependence of the pathway response and its interruption by inhibition of MEK were experimentally confirmed.
Keywords:growth factor receptors  mathematical model  mitogen‐activated protein kinases  negative feedback  nucleocytoplasmic shuttling
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