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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.

Oncogene
|April 21, 2001
PubMed

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.

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