Trident cold atmospheric plasma blocks three cancer survival pathways to overcome therapy resistance
Bo Guo1,2, Anthony D Pomicter3, Francis Li1
1Frank Reidy Center for Bioelectrics, Old Dominion University, Norfolk, VA 23508.
Abstract:
Therapy resistance is responsible for most cancer-related death and is mediated by the unique ability of cancer cells to leverage metabolic conditions, signaling molecules, redox status, and other pathways for their survival. Interestingly, many cancer survival pathways are susceptible to disturbances in cellular reactive oxygen species (ROS) and may therefore be disrupted by exogenous ROS. Here, we explore whether trident cold atmospheric plasma (Tri-CAP), a gas discharge with exceptionally low-level ROS, could inhibit multiple cancer survival pathways together in a murine cell line model of therapy-resistant chronic myeloid leukemia (CML). We show that Tri-CAP simultaneously disrupts three cancer survival pathways of redox deregulation, glycolysis, and proliferative AKT/mTOR/HIF-1α signaling in this cancer model. Significantly, Tri-CAP blockade induces a very high rate of apoptotic death in CML cell lines and in primary CD34+ hematopoietic stem and progenitor cells from CML patients, both harboring the therapy-resistant T315I mutation. In contrast, nonmalignant controls are minimally affected by Tri-CAP, suggesting it selectively targets resistant cancer cells. We further demonstrate that Tri-CAP elicits similar lethality in human melanoma, breast cancer, and CML cells with disparate, resistant mechanisms and that it both reduces tumor formation in two mouse models and improves survival of tumor-bearing mice. For use in patients, administration of Tri-CAP may be extracorporeal for hematopoietic stem cell transplantation therapy, transdermal, or through its activated solution for infusion therapy. Collectively, our results suggest that Tri-CAP represents a potent strategy for disrupting cancer survival pathways and overcoming therapy resistance in a variety of malignancies.
Insights
Trident cold atmospheric plasma (Tri-CAP) effectively targets multiple cancer survival pathways, including redox, glycolysis, and AKT/mTOR/HIF-1α signaling. This novel therapy shows promise in overcoming resistance and reducing tumor growth in various cancers.
Area of Science:
- Oncology
- Biophysics
- Biochemistry
Background:
- Therapy resistance is a major cause of cancer mortality.
- Cancer cells exploit metabolic and signaling pathways for survival.
- Reactive oxygen species (ROS) can disrupt cancer survival pathways.
Purpose of the Study:
- To investigate if trident cold atmospheric plasma (Tri-CAP) can inhibit multiple cancer survival pathways simultaneously.
- To evaluate Tri-CAP's efficacy against therapy-resistant chronic myeloid leukemia (CML) and other cancer types.
Main Methods:
- Utilized a murine cell line model of therapy-resistant CML.
- Applied Tri-CAP, a gas discharge with low-level ROS.
- Assessed effects on redox deregulation, glycolysis, and AKT/mTOR/HIF-1α signaling.
- Tested Tri-CAP on CML patient cells, melanoma, and breast cancer cells.
- Evaluated tumor formation and survival in mouse models.
Main Results:
- Tri-CAP simultaneously disrupted redox, glycolysis, and AKT/mTOR/HIF-1α signaling pathways.
- Induced significant apoptotic death in T315I-mutated CML cells and patient-derived stem cells.
- Demonstrated selective lethality towards cancer cells with minimal impact on nonmalignant cells.
- Showed efficacy against diverse resistant cancer types, reducing tumor formation and improving survival in mice.
Conclusions:
- Tri-CAP is a potent strategy for disrupting cancer survival pathways and overcoming therapy resistance.
- This approach shows potential for treating various malignancies, including resistant CML, melanoma, and breast cancer.
- Potential clinical applications include extracorporeal, transdermal, or infusion therapies.
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