Non-genotoxic activation of p53 through the RPL11-dependent ribosomal stress pathway

Lucia Morgado-Palacin1, Susana Llanos1, Manuel Urbano-Cuadrado2

  • 1Tumour Suppression Group, Experimental Therapeutics Program and Confocal Microscopy Unit, Spanish National Cancer Research Centre (CNIO), Madrid, E28029, Spain.

Carcinogenesis
|October 27, 2014
PubMed

Insights

Researchers identified acridine derivatives that disrupt the nucleolus without damaging DNA, activating the p53 pathway. This discovery paves the way for novel, non-genotoxic cancer therapies targeting the nucleolus.

Area of Science:

  • Molecular Biology
  • Cancer Research
  • Drug Discovery

Background:

  • Nucleolar disruption activates p53 via RPL11 inhibition of HDM2.
  • Many nucleolar disruptors also cause genotoxicity, limiting their therapeutic use.
  • Selective nucleolar disruption without DNA damage is a therapeutic goal.

Purpose of the Study:

  • To identify compounds causing nucleolar disruption independently of DNA damage.
  • To elucidate the mechanism of p53 activation by such compounds.
  • To explore potential non-genotoxic chemotherapeutic agents.

Main Methods:

  • High-throughput screening for nucleolar disruptors.
  • Mechanism of action studies for identified compounds.
  • Secondary screening of approved drugs.

Main Results:

  • An acridine derivative (CID-765471) was identified that disrupts the nucleolus by inhibiting ribosomal DNA transcription and degrading RPA194.
  • CID-765471 activates p53 through the RPL11/HDM2 pathway without causing detectable DNA damage.
  • Aminacrine and ethacridine were identified as additional acridine derivatives with similar non-genotoxic nucleolar disruption activity.

Conclusions:

  • Acridine derivatives can selectively disrupt the nucleolus and activate p53 without genotoxicity.
  • These compounds offer a basis for developing non-genotoxic chemotherapeutic strategies.
  • Targeting the nucleolus represents a promising avenue for cancer treatment.

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