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Targeting of Evolutionarily Acquired Cancer Cell Phenotype by Exploiting pHi-Metabolic Vulnerabilities
Bryce Ordway1, Michal Tomaszewski1, Samantha Byrne1
1Department of Cancer Physiology, Moffitt Cancer Center and Research Institute, Tampa, FL 33612, USA.
Abstract:
Evolutionary dynamics can be used to control cancers when a cure is not clinically considered to be achievable. Understanding Darwinian intratumoral interactions of microenvironmental selection forces can be used to steer tumor progression towards a less invasive trajectory. Here, we approach intratumoral heterogeneity and evolution as a dynamic interaction among subpopulations through the application of small, but selective biological forces such as intracellular pH (pHi) and/or extracellular pH (pHe) vulnerabilities. Increased glycolysis is a prominent phenotype of cancer cells under hypoxia or normoxia (Warburg effect). Glycolysis leads to an important aspect of cancer metabolism: reduced pHe and higher pHi. We recently showed that decreasing pHi and targeting pHi sensitive enzymes can reverse the Warburg effect (WE) phenotype and inhibit tumor progression. Herein, we used diclofenac (DIC) repurposed to control MCT activity, and Koningic acid (KA) that is a GAPDH partial inhibitor, and observed that we can control the subpopulation of cancer cells with WE phenotype within a tumor in favor of a less aggressive phenotype without a WE to control progression and metastasis. In a 3D spheroid co-cultures, we showed that our strategy can control the growth of more aggressive MDA-MB-231 cells, while sparing the less aggressive MCF7 cells. In an animal model, we show that our approach can reduce tumor growth and metastasis. We thus propose that evolutionary dynamics can be used to control tumor cells' clonal or sub-clonal populations in favor of slower growth and less damage to patients. We propose that this can result in cancer control for tumors where cure is not an option.
Insights
This study uses evolutionary dynamics to control cancer progression by targeting cancer cell metabolism. By manipulating pH levels, researchers can steer tumor evolution towards less aggressive phenotypes, offering a new approach for tumors where a cure is not possible.
Area of Science:
- Cancer Biology
- Evolutionary Dynamics
- Metabolic Reprogramming
Background:
- Cancer evolution is driven by microenvironmental selection forces.
- Intratumoral heterogeneity and Darwinian dynamics influence tumor progression.
- Targeting cancer cell metabolism, like the Warburg effect (WE), offers therapeutic potential.
Purpose of the Study:
- To investigate the use of evolutionary dynamics to control cancer progression.
- To steer tumor evolution towards less invasive phenotypes by manipulating intracellular pH (pHi) and extracellular pH (pHe).
- To explore the efficacy of repurposed drugs diclofenac (DIC) and Koningic acid (KA) in controlling cancer cell subpopulations.
Main Methods:
- Applied small, selective biological forces (pHi/pHe vulnerabilities) to cancer cell subpopulations.
- Utilized diclofenac (DIC) to control monocarboxylate transporter (MCT) activity.
- Employed Koningic acid (KA) as a glyceraldehyde-3-phosphate dehydrogenase (GAPDH) inhibitor.
- Tested the strategy in 3D spheroid co-cultures and an animal model.
Main Results:
- Successfully controlled cancer cell subpopulations with the Warburg effect (WE) phenotype, favoring less aggressive phenotypes.
- Demonstrated control over aggressive MDA-MB-231 cell growth while sparing less aggressive MCF7 cells in 3D cultures.
- Reduced tumor growth and metastasis in an animal model.
Conclusions:
- Evolutionary dynamics can be harnessed to control tumor cell populations, promoting slower growth and reduced patient harm.
- This approach offers a strategy for cancer control in cases where a cure is not achievable.
- Targeting pH vulnerabilities and metabolic pathways presents a viable method for managing advanced cancers.
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