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Metronomic Chemotherapy Modulates Clonal Interactions to Prevent Drug Resistance in Non-Small Cell Lung Cancer
Maryna Bondarenko1,2, Marion Le Grand1, Yuval Shaked3,4
1Centre de Recherche en Cancérologie de Marseille, Aix-Marseille Université, Inserm, CNRS, Institut Paoli Calmettes, 13273 Marseille, France.
Abstract:
Despite recent advances in deciphering cancer drug resistance mechanisms, relapse is a widely observed phenomenon in advanced cancers, mainly due to intratumor clonal heterogeneity. How tumor clones progress and impact each other remains elusive. In this study, we developed 2D and 3D non-small cell lung cancer co-culture systems and defined a phenomenological mathematical model to better understand clone dynamics. Our results demonstrated that the drug-sensitive clones inhibit the proliferation of the drug-resistant ones under untreated conditions. Model predictions and their experimental in vitro and in vivo validations indicated that a metronomic schedule leads to a better regulation of tumor cell heterogeneity over time than a maximum-tolerated dose schedule, while achieving control of tumor progression. We finally showed that drug-sensitive and -resistant clones exhibited different metabolic statuses that could be involved in controlling the intratumor heterogeneity dynamics. Our data suggested that the glycolytic activity of drug-sensitive clones could play a major role in inhibiting the drug-resistant clone proliferation. Altogether, these computational and experimental approaches provide foundations for using metronomic therapy to control drug-sensitive and -resistant clone balance and highlight the potential of targeting cell metabolism to manage intratumor heterogeneity.
Insights
Drug-sensitive cancer cells can suppress resistant cells. Metronomic therapy and targeting cell metabolism show promise for managing tumor heterogeneity and preventing relapse in advanced cancers.
Area of Science:
- Oncology
- Mathematical Biology
- Cancer Research
Background:
- Intratumor clonal heterogeneity drives cancer relapse and drug resistance.
- Understanding clone interactions is crucial for effective cancer treatment.
Purpose of the Study:
- To investigate the dynamics between drug-sensitive and drug-resistant non-small cell lung cancer clones.
- To evaluate metronomic therapy versus maximum-tolerated dose for managing tumor heterogeneity.
- To explore the role of metabolic differences in clone interactions.
Main Methods:
- Development of 2D and 3D non-small cell lung cancer co-culture systems.
- Definition of a phenomenological mathematical model for clone dynamics.
- In vitro and in vivo experimental validation of model predictions.
Main Results:
- Drug-sensitive clones inhibit drug-resistant clone proliferation under untreated conditions.
- Metronomic therapy demonstrated superior regulation of tumor heterogeneity compared to maximum-tolerated dose.
- Distinct metabolic profiles of sensitive and resistant clones were identified, with glycolysis implicated in inhibiting resistant clone growth.
Conclusions:
- Metronomic therapy can balance drug-sensitive and -resistant clones, controlling tumor progression.
- Targeting cellular metabolism offers a strategy to manage intratumor heterogeneity.
- Computational and experimental approaches are foundational for developing novel cancer therapies.
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