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Chemical-Induced Skin Carcinogenesis Model Using Dimethylbenz[a]Anthracene and 12-O-Tetradecanoyl Phorbol-13-Acetate (DMBA-TPA)
Published on: December 19, 2019
Mitochondrial uncoupling inhibits p53 mitochondrial translocation in TPA-challenged skin epidermal JB6 cells
1Department of Pharmacology, Toxicology and Neuroscience, LSU Health Sciences Center in Shreveport, Shreveport, Louisiana, United States of America.
Abstract:
The tumor suppressor p53 is known to be able to trigger apoptosis in response to DNA damage, oncogene activation, and certain chemotherapeutic drugs. In addition to its transcriptional activation, a fraction of p53 translocates to mitochondria at the very early stage of apoptosis, which eventually contributes to the loss of mitochondrial membrane potential, generation of reactive oxygen species (ROS), cytochrome c release, and caspase activation. However, the mitochondrial events that affect p53 translocation are still unclear. Since mitochondrial uncoupling has been suggested to contribute to cancer development, herein, we studied whether p53 mitochondrial translocation and subsequent apoptosis were affected by mitochondrial uncoupling using chemical protonophores, and further verified the results using a siRNA approach in murine skin epidermal JB6 cells. Our results showed that mitochondrial uncoupling blocked p53 mitochondrial translocation induced by 12-O-tetradecanoylphorbol 13-acetate (TPA), a known tumor promoter to induce p53-mediated apoptosis in skin carcinogenesis. This blocking effect, in turn, led to preservation of mitochondrial functions, and eventually suppression of caspase activity and apoptosis. Moreover, uncoupling protein 2 (UCP2), a potential suppressor of ROS in mitochondria, is important for TPA-induced cell transformation in JB6 cells. UCP2 knock down cells showed enhanced p53 mitochondrial translocation, and were less prone to form colonies in soft agar after TPA treatment. Altogether, our data suggest that mitochondrial uncoupling may serve as an important regulator of p53 mitochondrial translocation and p53-mediated apoptosis during early tumor promotion. Therefore, targeting mitochondrial uncoupling may be considered as a novel treatment strategy for cancer.
Insights
Mitochondrial uncoupling inhibits tumor suppressor p53 translocation to mitochondria, blocking apoptosis. Targeting mitochondrial uncoupling may offer a new cancer treatment strategy.
Area of Science:
- Mitochondrial biology
- Cancer research
- Cellular signaling
Background:
- The tumor suppressor p53 plays a critical role in apoptosis induction via transcriptional activation and mitochondrial translocation.
- Mitochondrial translocation of p53 is an early event in apoptosis, leading to mitochondrial dysfunction and caspase activation.
- The precise mitochondrial events influencing p53 translocation remain largely unknown.
Purpose of the Study:
- To investigate the role of mitochondrial uncoupling in regulating p53 mitochondrial translocation and subsequent apoptosis.
- To explore the impact of chemical protonophores and siRNA-mediated knockdown on p53-mediated apoptosis.
- To determine the involvement of uncoupling protein 2 (UCP2) in tumor promotion and p53 translocation.
Main Methods:
- Utilized chemical protonophores to induce mitochondrial uncoupling in murine skin epidermal JB6 cells.
- Employed siRNA to knockdown uncoupling protein 2 (UCP2) expression.
- Assessed p53 mitochondrial translocation, mitochondrial membrane potential, reactive oxygen species (ROS) generation, caspase activity, and colony formation in soft agar.
Main Results:
- Mitochondrial uncoupling blocked p53 mitochondrial translocation induced by 12-O-tetradecanoylphorbol 13-acetate (TPA).
- This blockade preserved mitochondrial function, suppressed caspase activity, and inhibited apoptosis.
- UCP2 knockdown enhanced p53 mitochondrial translocation and reduced TPA-induced cell transformation.
Conclusions:
- Mitochondrial uncoupling acts as a key regulator of p53 mitochondrial translocation and apoptosis during early tumor promotion.
- UCP2 is crucial for TPA-induced cell transformation, with its knockdown enhancing p53 translocation.
- Targeting mitochondrial uncoupling presents a potential novel therapeutic strategy for cancer treatment.
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