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p53 activation in response to microtubule disruption is mediated by integrin-Erk signaling
A A Sablina1, P M Chumakov, A J Levine
1Institute of Cancerogenesis, Russian Cancer Research Center, Moscow, Russia.
Abstract:
The p53 tumor suppressor is activated in response to various stresses driving the cells into growth arrest or apoptosis. We have addressed the question of how disintegration of microtubule system induces activation of p53. Depolymerization of microtubules by colcemid in rat and human quiescent fibroblasts resulted in accumulation of transcriptionally active p53 that caused cell-cycle arrest at the G1/S boundary. The p53 activation correlated with prominent activation of Erk1/2 MAP kinases that resulted from colcemid-stimulated development of focal adhesions. Inhibition of focal contacts development by plating of cells onto poly-L-lysine abrogated both Erk1/2 and p53 activations in colcemid-treated cells, while plating of cells onto fibronectin caused transient up-regulation of p53 even in the absence of colcemid. Pre-treatment of cells with the specific MEK1 inhibitor PD098059 also attenuated colcemid-induced p53 activation and G1 cell cycle arrest. Cell types which either failed to develop focal adhesions in response to colcemid treatment (human MCF-7 epithelial cells), or lacked colcemid-induced sustained Erk activation (primary mouse embryo fibroblasts and 12(1) cells) showed virtually no p53 up-regulation in response to disruption of microtubules during G0/G1. Our results indicate that p53 activation is not triggered by disintegration of microtubule system by itself, but rather originates from some of the consequences of such disintegration, in particular, from the development of focal adhesions leading to activation of Erk signaling pathway.
Insights
Microtubule disruption activates the p53 tumor suppressor through focal adhesion development and Erk signaling, not solely by microtubule disintegration. This leads to cell-cycle arrest at the G1/S boundary.
Area of Science:
- Cell Biology
- Molecular Biology
- Cancer Research
Background:
- The p53 tumor suppressor plays a crucial role in cellular responses to stress, inducing growth arrest or apoptosis.
- Understanding how cellular structures, like the microtubule system, influence p53 activation is vital for cancer research.
Purpose of the Study:
- To investigate the mechanism by which microtubule system disintegration leads to p53 activation.
- To determine the role of focal adhesions and Erk signaling in this process.
Main Methods:
- Depolymerization of microtubules using colcemid in quiescent fibroblasts.
- Analysis of p53 and Erk1/2 MAP kinase activation.
- Modulation of focal adhesion development by cell plating substrates (poly-L-lysine, fibronectin).
- Inhibition of MEK1 using PD098059.
Main Results:
- Colcemid-induced microtubule depolymerization activated p53 and caused G1/S cell-cycle arrest.
- p53 activation correlated with Erk1/2 MAP kinase activation, stemming from focal adhesion development.
- Inhibiting focal adhesions or Erk signaling abrogated p53 activation.
- Specific cell types lacking focal adhesion or sustained Erk activation showed no p53 upregulation.
Conclusions:
- p53 activation is not directly caused by microtubule disintegration but by downstream events.
- Focal adhesion development and subsequent Erk signaling pathway activation are key mediators of p53 activation upon microtubule disruption.