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.

ACS Chemical Biology
|April 26, 2019
PubMed

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.

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