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α-Mangostin induces oxidative damage, mitochondrial dysfunction, and apoptosis in a triple-negative breast cancer
Alfredo Cruz-Gregorio1,2, Ana Karina Aranda-Rivera2, Omar Emiliano Aparicio-Trejo3
1Departamento de Biomedicina Cardiovascular, Instituto Nacional de Cardiología "Ignacio Chávez", CDMX, Mexico.
Abstract:
Triple-negative breast cancer (TNBC) does not express estrogen receptor, progesterone receptor, and human epidermal growth factor receptor; therefore, TNBC lacks targeted therapy, and chemotherapy is the only available treatment for this illness but causes side effects. A putative strategy for the treatment of TNBC could be the use of the polyphenols such as α-Mangostin (α-M), which has shown anticancerogenic effects in different cancer models and can modulate the inflammatory and prooxidant state in several pathological models. The redox state, oxidative stress (OS), and oxidative damage are highly related to cancer development and its treatment. Thus, this study aimed to evaluate the effects of α-M on redox state, mitochondrial metabolism, and apoptosis in 4T1 mammary carcinoma cells. We found that α-M decreases both protein levels and enzymatic activity of catalase, and increases reactive oxygen species, oxidized proteins and glutathione disulfide, which demonstrates that α-M induces oxidative damage. We also found that α-M promotes mitochondrial dysfunction by abating basal respiration, the respiration ligated to oxidative phosphorylation (OXPHOS), and the rate control of whole 4T1 cells. Additionally, α-M also decreases the levels of OXPHOS subunits of mitochondrial complexes I, II, III, and adenosine triphosphate synthase, the activity of mitochondrial complex I as well as the levels of peroxisome proliferator-activated receptor-gamma co-activator 1α, showing a mitochondrial mass reduction. Then, oxidative damage and mitochondrial dysfunction induced by α-M induce apoptosis of 4T1 cells, which is evidenced by B cell lymphoma 2 decrease and caspase 3 cleavage. Taken together, our results suggest that α-M induces OS and mitochondrial dysfunction, resulting in 4T1 cell death through apoptotic mechanisms.
Insights
Alpha-Mangostin (α-M) induces oxidative stress and mitochondrial dysfunction in triple-negative breast cancer (TNBC) cells. This leads to apoptosis, offering a potential new therapeutic strategy for TNBC treatment.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Triple-negative breast cancer (TNBC) lacks targeted therapies, relying solely on chemotherapy with significant side effects.
- Polyphenols, like Alpha-Mangostin (α-M), show anticancer potential and can modulate oxidative stress.
- Oxidative stress and mitochondrial dysfunction are implicated in cancer development and treatment response.
Purpose of the Study:
- To investigate the effects of α-M on redox state, mitochondrial metabolism, and apoptosis in 4T1 mammary carcinoma cells.
- To determine if α-M can induce oxidative damage and mitochondrial dysfunction as a therapeutic mechanism.
Main Methods:
- Assessed protein levels and enzymatic activity of catalase.
- Measured reactive oxygen species (ROS), oxidized proteins, and glutathione disulfide (GSSG) levels.
- Evaluated mitochondrial respiration, oxidative phosphorylation (OXPHOS) complex activities, and mitochondrial mass.
- Quantified apoptosis markers, including B-cell lymphoma 2 (Bcl-2) and cleaved caspase-3.
Main Results:
- α-M treatment increased ROS, oxidized proteins, and GSSG while decreasing catalase activity, indicating induced oxidative damage.
- α-M impaired mitochondrial respiration, reduced OXPHOS subunit levels and activity, and decreased mitochondrial mass.
- α-M induced apoptosis in 4T1 cells, evidenced by decreased Bcl-2 and increased caspase-3 cleavage.
Conclusions:
- α-M induces significant oxidative stress and mitochondrial dysfunction in 4T1 mammary carcinoma cells.
- These effects culminate in the induction of apoptosis, suggesting α-M as a potential therapeutic agent for TNBC.
- The study highlights α-M's mechanism of action via redox modulation and mitochondrial impairment.
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