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PON3 is upregulated in cancer tissues and protects against mitochondrial superoxide-mediated cell death
E-M Schweikert1, A Devarajan, I Witte
1Department of Pharmacology, University Medical Center of the Johannes-Gutenberg University Mainz, Obere Zahlbacher Str. 67, 55131 Mainz, Germany.
Abstract:
To achieve malignancy, cancer cells convert numerous signaling pathways, with evasion from cell death being a characteristic hallmark. The cell death machinery represents an anti-cancer target demanding constant identification of tumor-specific signaling molecules. Control of mitochondrial radical formation, particularly superoxide interconnects cell death signals with appropriate mechanistic execution. Superoxide is potentially damaging, but also triggers mitochondrial cytochrome c release. While paraoxonase (PON) enzymes are known to protect against cardiovascular diseases, recent data revealed that PON2 attenuated mitochondrial radical formation and execution of cell death. Another family member, PON3, is poorly investigated. Using various cell culture systems and knockout mice, here we addressed its potential role in cancer. PON3 is found overexpressed in various human tumors and diminishes mitochondrial superoxide formation. It directly interacts with coenzyme Q10 and presumably acts by sequestering ubisemiquinone, leading to enhanced cell death resistance. Localized to the endoplasmic reticulum (ER) and mitochondria, PON3 abrogates apoptosis in response to DNA damage or intrinsic but not extrinsic stimulation. Moreover, PON3 impaired ER stress-induced apoptotic MAPK signaling and CHOP induction. Therefore, our study reveals the mechanism underlying PON3's anti-oxidative effect and demonstrates a previously unanticipated function in tumor cell development. We suggest PONs represent a novel class of enzymes crucially controlling mitochondrial radical generation and cell death.
Insights
Paraoxonase 3 (PON3) enzyme overexpression in tumors reduces mitochondrial superoxide, enhancing cancer cell survival. This study reveals PON3
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Cancer cells evade apoptosis, a hallmark of malignancy.
- Mitochondrial superoxide production is critical for cell death execution.
- Paraoxonase (PON) enzymes, like PON2, modulate mitochondrial radicals and cell death.
Purpose of the Study:
- Investigate the role of the understudied PON3 enzyme in cancer.
- Elucidate the mechanism of PON3's action in tumor development.
Main Methods:
- Utilized cell culture systems and knockout mice models.
- Analyzed PON3 expression in human tumors.
- Examined PON3 interaction with coenzyme Q10.
- Assessed PON3's effect on mitochondrial superoxide and apoptosis signaling pathways.
Main Results:
- PON3 is overexpressed in various human tumors.
- PON3 diminishes mitochondrial superoxide formation by interacting with coenzyme Q10.
- PON3 confers resistance to apoptosis induced by DNA damage and intrinsic stimuli.
- PON3 inhibits ER stress-induced MAPK signaling and CHOP induction.
Conclusions:
- PON3 functions as an anti-oxidative enzyme promoting tumor cell survival.
- PON3's mechanism involves sequestering ubisemiquinone, reducing mitochondrial radicals.
- PON3 plays a significant role in cancer development by inhibiting cell death.
- PON enzymes represent a novel class controlling mitochondrial radical generation and cell death.
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