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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
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.
Abstract:
Nucleolar disruption has recently emerged as a relevant means to activate p53 through inhibition of HDM2 by ribosome-free RPL11. Most drugs that induce nucleolar disruption also possess important genotoxic activity, which can have lasting mutagenic effects. Therefore, it is of interest to identify compounds that selectively produce nucleolar disruption in the absence of DNA damage. Here, we have performed a high-throughput screening to search for nucleolar disruptors. We have identified an acridine derivative (PubChem CID-765471) previously known for its capacity to activate p53 independently of DNA damage, although the molecular mechanism underlying p53 activation had remained uncharacterized. We report that CID-765471 produces nucleolar disruption by inhibiting ribosomal DNA transcription in a process that includes the selective degradation of the RPA194 subunit of RNA polymerase I. Following nucleolar disruption, CID-765471 activates p53 through the RPL11/HDM2 pathway in the absence of detectable DNA damage. In a secondary screening of compounds approved for medical use, we identify two additional acridine derivatives, aminacrine and ethacridine, that operate in a similar manner as CID-765471. These findings provide the basis for non-genotoxic chemotherapeutic approaches that selectively target the nucleolus.
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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