Related Experiment Video
Updated: Jan 25, 2026

Anticancer Efficacy of Photodynamic Therapy with Lung Cancer-Targeted Nanoparticles
Published on: December 1, 2016
Mitochondrial Protease ClpP is a Target for the Anticancer Compounds ONC201 and Related Analogues
Paul R Graves1, Lucas J Aponte-Collazo2, Emily M J Fennell2
1Department of Radiation Oncology , New York Presbyterian Brooklyn Methodist Hospital , Brooklyn , New York 11215 , United States.
Abstract:
ONC201 is a first-in-class imipridone molecule currently in clinical trials for the treatment of multiple cancers. Despite enormous clinical potential, the mechanism of action is controversial. To investigate the mechanism of ONC201 and identify compounds with improved potency, we tested a series of novel ONC201 analogues (TR compounds) for effects on cell viability and stress responses in breast and other cancer models. The TR compounds were found to be ∼50-100 times more potent at inhibiting cell proliferation and inducing the integrated stress response protein ATF4 than ONC201. Using immobilized TR compounds, we identified the human mitochondrial caseinolytic protease P (ClpP) as a specific binding protein by mass spectrometry. Affinity chromatography/drug competition assays showed that the TR compounds bound ClpP with ∼10-fold higher affinity compared to ONC201. Importantly, we found that the peptidase activity of recombinant ClpP was strongly activated by ONC201 and the TR compounds in a dose- and time-dependent manner with the TR compounds displaying a ∼10-100 fold increase in potency over ONC201. Finally, siRNA knockdown of ClpP in SUM159 cells reduced the response to ONC201 and the TR compounds, including induction of CHOP, loss of the mitochondrial proteins (TFAM, TUFM), and the cytostatic effects of these compounds. Thus, we report that ClpP directly binds ONC201 and the related TR compounds and is an important biological target for this class of molecules. Moreover, these studies provide, for the first time, a biochemical basis for the difference in efficacy between ONC201 and the TR compounds.
Insights
Novel TR compounds are more potent cancer therapeutics than ONC201 by directly activating the mitochondrial ClpP protease. This study identifies ClpP as a key target for imipridone drugs, offering a biochemical basis for improved efficacy.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- ONC201 is an imipridone anticancer drug with an unclear mechanism of action.
- Investigating ONC201's mechanism and developing more potent analogues is crucial for cancer therapy.
Purpose of the Study:
- To elucidate the mechanism of action of ONC201 and its analogues.
- To identify novel compounds with enhanced anti-cancer potency.
- To determine the specific molecular target of ONC201 and its analogues.
Main Methods:
- Synthesis and testing of novel ONC201 analogues (TR compounds) in cancer models.
- Mass spectrometry and affinity chromatography to identify binding proteins.
- Enzyme activity assays to assess ClpP activation.
- siRNA knockdown to evaluate the role of ClpP in cellular response.
Main Results:
- TR compounds demonstrated 50-100 times higher potency than ONC201 in inhibiting cancer cell proliferation and inducing ATF4.
- Human mitochondrial caseinolytic protease P (ClpP) was identified as the specific binding protein for TR compounds.
- TR compounds bound ClpP with 10-fold higher affinity and activated its peptidase activity more potently than ONC201.
- ClpP knockdown reduced cellular responses to ONC201 and TR compounds, including cytostatic effects.
Conclusions:
- ClpP directly binds ONC201 and TR compounds, serving as a critical biological target.
- The enhanced efficacy of TR compounds is attributed to their higher potency in activating ClpP.
- This study provides a biochemical rationale for the differential efficacy of ONC201 and its analogues, paving the way for optimized cancer therapeutics.
Related Concept Videos
Animal Mitochondrial Genetics
Export of Mitochondrial and Chloroplast Genes
Comparing Mitochondrial, Chloroplast, and Prokaryotic Genomes
Molecules and Compounds
Organic Compounds
Elements and Compounds
Elements
Elements are classified as atomic or molecular based on the nature of their basic units. They are unique forms of matter with specific chemical and physical properties that cannot break down into smaller substances by ordinary chemical reactions. There...

