Mitochondrial targeted catalase suppresses invasive breast cancer in mice
Jorming Goh1, Linda Enns, Soroosh Fatemie
1Department of Comparative Medicine University of Washington, Seattle, USA.
Background:
Treatment of invasive breast cancer has an alarmingly high rate of failure because effective targets have not been identified. One potential target is mitochondrial generated reactive oxygen species (ROS) because ROS production has been associated with changes in substrate metabolism and lower concentration of anti-oxidant enzymes in tumor and stromal cells and increased metastatic potential.
Methods:
Transgenic mice expressing a human catalase gene (mCAT) were crossed with MMTV-PyMT transgenic mice that develop metastatic breast cancer. All mice (33 mCAT positive and 23 mCAT negative) were terminated at 110 days of age, when tumors were well advanced. Tumors were histologically assessed for invasiveness, proliferation and metastatic foci in the lungs. ROS levels and activation status of p38 MAPK were determined.
Results:
PyMT mice expressing mCAT had a 12.5 per cent incidence of high histological grade primary tumor invasiveness compared to a 62.5 per cent incidence in PyMT mice without mCAT. The histological grade correlated with incidence of metastasis with 56 per cent of PyMT mice positive for mCAT showing evidence of pulmonary metastasis compared to 85.4 per cent of PyMT mice negative for mCAT with pulmonary metastasis (p ≤ 0.05). PyMT tumor cells expressing mCAT had lower ROS levels and were more resistant to hydrogen peroxide-induced oxidative stress than wild type tumor cells, suggesting that mCAT has the potential of quenching intracellular ROS and subsequent invasive behavior. The metastatic tumor burden in PyMT mice expressing mCAT was 0.1 mm2/cm2 of lung tissue compared with 1.3 mm2/cm2 of lung tissue in PyMT mice expressing the wild type allele (p ≤ 0.01), indicating that mCAT could play a role in mitigating metastatic tumor progression at a distant organ site. Expression of mCAT in the lungs increased resistance to hydrogen peroxide-induced oxidative stress that was associated with decreased activation of p38MAPK suggesting ROS signaling is dependent on p38MAPK for at least some of its downstream effects.
Conclusion:
Targeting catalase within mitochondria of tumor cells and tumor stromal cells suppresses ROS-driven tumor progression and metastasis. Therefore, increasing the antioxidant capacity of the mitochondrial compartment could be a rational therapeutic approach for invasive breast cancer.
Insights
Mitochondrial catalase (mCAT) significantly reduced invasive breast cancer progression and metastasis in mice by lowering reactive oxygen species (ROS). This suggests enhancing mitochondrial antioxidant capacity is a promising therapeutic strategy for invasive breast cancer.
Area of Science:
- Oncology
- Mitochondrial Biology
- Cancer Metastasis
Background:
- Invasive breast cancer treatment failure highlights the need for novel therapeutic targets.
- Mitochondrial reactive oxygen species (ROS) are implicated in tumor progression and metastasis.
- Identifying targets to modulate ROS is crucial for improving treatment outcomes.
Purpose of the Study:
- To investigate the role of mitochondrial catalase (mCAT) in suppressing ROS-driven breast cancer invasiveness and metastasis.
- To evaluate the therapeutic potential of enhancing mitochondrial antioxidant capacity in invasive breast cancer.
Main Methods:
- Transgenic mice expressing human catalase (mCAT) were crossed with MMTV-PyMT mice to create models of metastatic breast cancer.
- Tumor invasiveness, proliferation, and lung metastasis were assessed histologically.
- Reactive oxygen species (ROS) levels and p38 MAPK activation were measured in tumor cells.
Main Results:
- mCAT expression reduced primary tumor invasiveness and lung metastasis incidence by over 50% compared to controls.
- mCAT-expressing tumors exhibited lower ROS levels and increased resistance to oxidative stress.
- Metastatic tumor burden in the lungs was significantly reduced in mCAT-expressing mice, indicating mitigation of distant tumor progression.
Conclusions:
- Targeting mitochondrial catalase effectively suppresses ROS-driven tumor progression and metastasis in invasive breast cancer.
- Enhancing the antioxidant capacity of the mitochondrial compartment represents a rational therapeutic approach.
- Modulating ROS signaling via p38 MAPK may be a key mechanism in suppressing tumor invasiveness.
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