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Hitting the Bull's-Eye in Metastatic Cancers-NSAIDs Elevate ROS in Mitochondria, Inducing Malignant Cell Death
Stephen John Ralph1, Rhys Pritchard2, Sara Rodríguez-Enríquez3,4
1School of Medical Science, Griffith University, Griffith Health Institute, Parklands Drive, Southport, Gold Coast, Queensland 4222, Australia. s.ralph@griffith.edu.au.
Abstract:
Tumor metastases that impede the function of vital organs are a major cause of cancer related mortality. Mitochondrial oxidative stress induced by hypoxia, low nutrient levels, or other stresses, such as genotoxic events, act as key drivers of the malignant changes in primary tumors to enhance their progression to metastasis. Emerging evidence now indicates that mitochondrial modifications and mutations resulting from oxidative stress, and leading to OxPhos stimulation and/or enhanced reactive oxygen species (ROS) production, are essential for promoting and sustaining the highly metastatic phenotype. Moreover, the modified mitochondria in emerging or existing metastatic cancer cells, by their irreversible differences, provide opportunities for selectively targeting their mitochondrial functions with a one-two punch. The first blow would block their anti-oxidative defense, followed by the knockout blow-promoting production of excess ROS, capitulating the terminal stage-activation of the mitochondrial permeability transition pore (mPTP), specifically killing metastatic cancer cells or their precursors. This review links a wide area of research relevant to cellular mechanisms that affect mitochondria activity as a major source of ROS production driving the pro-oxidative state in metastatic cancer cells. Each of the important aspects affecting mitochondrial function are discussed including: hypoxia, HIFs and PGC1 induced metabolic changes, increased ROS production to induce a more pro-oxidative state with reduced antioxidant defenses. It then focuses on how the mitochondria, as a major source of ROS in metastatic cancer cells driving the pro-oxidative state of malignancy enables targeting drugs affecting many of these altered processes and why the NSAIDs are an excellent example of mitochondria-targeted agents that provide a one-two knockout activating the mPTP and their efficacy as selective anticancer metastasis drugs.
Insights
Mitochondrial oxidative stress drives cancer metastasis. Targeting cancer cell mitochondria with a dual approach, blocking antioxidant defenses and promoting reactive oxygen species (ROS), selectively kills metastatic cells.
Area of Science:
- Oncology
- Cell Biology
- Biochemistry
Background:
- Metastasis is a major cause of cancer mortality, driven by mitochondrial oxidative stress.
- Mitochondrial alterations and mutations enhance metastasis by increasing reactive oxygen species (ROS) and oxidative phosphorylation (OxPhos).
- Metastatic cancer cells exhibit unique mitochondrial features exploitable for targeted therapies.
Purpose of the Study:
- To review the role of mitochondria in promoting cancer metastasis.
- To explore therapeutic strategies targeting mitochondrial dysfunction in metastatic cancer.
- To highlight NSAIDs as potential mitochondria-targeted anti-metastasis drugs.
Main Methods:
- Literature review of cellular mechanisms affecting mitochondrial function in metastasis.
- Analysis of factors like hypoxia, HIFs, PGC1, and ROS production in metastatic cells.
- Evaluation of mitochondria-targeted drugs, specifically NSAIDs, for anti-metastasis efficacy.
Main Results:
- Mitochondrial oxidative stress and increased ROS production are crucial for the metastatic phenotype.
- Hypoxia and metabolic changes (HIFs, PGC1) contribute to a pro-oxidative state in metastatic cells.
- NSAIDs can act as mitochondria-targeted agents, activating the mitochondrial permeability transition pore (mPTP) to induce cancer cell death.
Conclusions:
- Targeting mitochondrial function offers a selective approach to combat cancer metastasis.
- A 'one-two punch' strategy blocking antioxidant defenses and inducing ROS can eliminate metastatic cells.
- NSAIDs demonstrate potential as effective, mitochondria-targeted drugs against cancer metastasis.
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