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Theoretical and experimental analysis links isoform-specific ERK signalling to cell fate decisions.


ABSTRACT: Cell fate decisions are regulated by the coordinated activation of signalling pathways such as the extracellular signal-regulated kinase (ERK) cascade, but contributions of individual kinase isoforms are mostly unknown. By combining quantitative data from erythropoietin-induced pathway activation in primary erythroid progenitor (colony-forming unit erythroid stage, CFU-E) cells with mathematical modelling, we predicted and experimentally confirmed a distributive ERK phosphorylation mechanism in CFU-E cells. Model analysis showed bow-tie-shaped signal processing and inherently transient signalling for cytokine-induced ERK signalling. Sensitivity analysis predicted that, through a feedback-mediated process, increasing one ERK isoform reduces activation of the other isoform, which was verified by protein over-expression. We calculated ERK activation for biochemically not addressable but physiologically relevant ligand concentrations showing that double-phosphorylated ERK1 attenuates proliferation beyond a certain activation level, whereas activated ERK2 enhances proliferation with saturation kinetics. Thus, we provide a quantitative link between earlier unobservable signalling dynamics and cell fate decisions.

SUBMITTER: Schilling M 

PROVIDER: S-EPMC2824492 | biostudies-other | 2009

REPOSITORIES: biostudies-other

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Theoretical and experimental analysis links isoform-specific ERK signalling to cell fate decisions.

Schilling Marcel M   Maiwald Thomas T   Hengl Stefan S   Winter Dominic D   Kreutz Clemens C   Kolch Walter W   Lehmann Wolf D WD   Timmer Jens J   Klingmüller Ursula U  

Molecular systems biology 20091222


Cell fate decisions are regulated by the coordinated activation of signalling pathways such as the extracellular signal-regulated kinase (ERK) cascade, but contributions of individual kinase isoforms are mostly unknown. By combining quantitative data from erythropoietin-induced pathway activation in primary erythroid progenitor (colony-forming unit erythroid stage, CFU-E) cells with mathematical modelling, we predicted and experimentally confirmed a distributive ERK phosphorylation mechanism in  ...[more]

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