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Published on: March 15, 2024
Mitochondrial uncoupling reveals a novel therapeutic opportunity for p53-defective cancers
R Kumar1,2, L Coronel1,3, B Somalanka3
1IFOM-p53Lab Joint Research Laboratory, IFOM, Milan, 20139, Italy.
Abstract:
There are considerable challenges in directly targeting the mutant p53 protein, given the large heterogeneity of p53 mutations in the clinic. An alternative approach is to exploit the altered fitness of cells imposed by loss-of-wild-type p53. Here we identify niclosamide through a HTS screen for compounds selectively killing p53-deficient cells. Niclosamide impairs the growth of p53-deficient cells and of p53 mutant patient-derived ovarian xenografts. Metabolome profiling reveals that niclosamide induces mitochondrial uncoupling, which renders mutant p53 cells susceptible to mitochondrial-dependent apoptosis through preferential accumulation of arachidonic acid (AA), and represents a first-in-class inhibitor of p53 mutant tumors. Wild-type p53 evades the cytotoxicity by promoting the transcriptional induction of two key lipid oxygenation genes, ALOX5 and ALOX12B, which catalyzes the dioxygenation and breakdown of AA. Therefore, we propose a new paradigm for targeting cancers defective in the p53 pathway, by exploiting their vulnerability to niclosamide-induced mitochondrial uncoupling.
Insights
Niclosamide selectively kills cancer cells lacking wild-type p53 by disrupting mitochondrial function and causing cell death. This drug offers a new therapeutic strategy for p53-mutant tumors.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Targeting mutant p53 is challenging due to mutation heterogeneity.
- Loss of wild-type p53 function creates a vulnerability in cancer cells.
Purpose of the Study:
- To identify compounds that selectively kill p53-deficient cancer cells.
- To explore niclosamide as a therapeutic agent for p53-mutant tumors.
Main Methods:
- High-throughput screening (HTS) to identify selective compounds.
- Metabolome profiling to understand drug mechanisms.
- In vitro and in vivo studies using cell lines and patient-derived xenografts.
Main Results:
- Niclosamide selectively impairs the growth of p53-deficient cells and p53 mutant ovarian xenografts.
- Niclosamide induces mitochondrial uncoupling, leading to arachidonic acid (AA) accumulation and apoptosis in mutant p53 cells.
- Wild-type p53 protects cells by inducing genes (ALOX5, ALOX12B) that metabolize AA.
Conclusions:
- Niclosamide is a first-in-class inhibitor targeting p53-mutant tumors.
- Exploiting vulnerability to niclosamide-induced mitochondrial uncoupling is a novel therapeutic strategy for p53-deficient cancers.
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