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Updated: Jul 6, 2026

Implementation of In Vitro Drug Resistance Assays: Maximizing the Potential for Uncovering Clinically Relevant Resistance Mechanisms
Published on: December 9, 2015
Modeling the Transfer of Drug Resistance in Solid Tumors
1Department of Mathematics, University of Maryland, College Park, MD, 20742, USA.
Abstract:
ABC efflux transporters are a key factor leading to multidrug resistance in cancer. Overexpression of these transporters significantly decreases the efficacy of anti-cancer drugs. Along with selection and induction, drug resistance may be transferred between cells, which is the focus of this paper. Specifically, we consider the intercellular transfer of P-glycoprotein (P-gp), a well-known ABC transporter that was shown to confer resistance to many common chemotherapeutic drugs. In a recent paper, Durán et al. (Bull Math Biol 78(6):1218-1237, 2016) studied the dynamics of mixed cultures of resistant and sensitive NCI-H460 (human non-small lung cancer) cell lines. As expected, the experimental data showed a gradual increase in the percentage of resistance cells and a decrease in the percentage of sensitive cells. The experimental work was accompanied with a mathematical model that assumed P-gp transfer from resistant cells to sensitive cells, rendering them temporarily resistant. The mathematical model provided a reasonable fit to the experimental data. In this paper, we develop a new mathematical model for the transfer of drug resistance between cancer cells. Our model is based on incorporating a resistance phenotype into a model of cancer growth (Greene et al. in J Theor Biol 367:262-277, 2015). The resulting model for P-gp transfer, written as a system of integro-differential equations, follows the dynamics of proliferating, quiescent, and apoptotic cells, with a varying resistance phenotype. We show that this model provides a good match to the dynamics of the experimental data of Durán et al. (2016). The mathematical model shows a better fit when resistant cancer cells have a slower division rate than the sensitive cells.
Insights
This study models how cancer cells transfer drug resistance via P-glycoprotein (P-gp). The new mathematical model accurately reflects experimental data, suggesting slower division in resistant cells improves model fit.
Area of Science:
- Oncology
- Mathematical Biology
- Cancer Research
Background:
- Multidrug resistance (MDR) in cancer is often caused by ABC efflux transporters like P-glycoprotein (P-gp).
- Intercellular transfer of drug resistance, specifically P-gp, between cancer cells is a critical factor in treatment efficacy.
- Previous models have studied P-gp transfer, but a more comprehensive approach is needed.
Purpose of the Study:
- To develop a novel mathematical model for the intercellular transfer of drug resistance in cancer cells.
- To incorporate a resistance phenotype into a cancer growth model to simulate P-gp transfer dynamics.
- To validate the model against experimental data of mixed resistant and sensitive lung cancer cell lines.
Main Methods:
- Developed a mathematical model using a system of integro-differential equations.
- Incorporated proliferating, quiescent, and apoptotic cell dynamics with a varying resistance phenotype.
- Analyzed the model's fit to experimental data from Durán et al. (2016) concerning NCI-H460 lung cancer cells.
Main Results:
- The new mathematical model accurately captures the dynamics of drug resistance transfer between cancer cells.
- The model demonstrates a good match to experimental data showing changes in resistant and sensitive cell populations.
- Model performance improved when assuming a slower division rate for resistant cancer cells compared to sensitive cells.
Conclusions:
- Intercellular transfer of P-gp contributes significantly to multidrug resistance dynamics in cancer.
- The developed integro-differential equation model provides a robust framework for studying resistance transfer.
- Cancer cell division rates play a crucial role in the overall dynamics of drug resistance acquisition and spread.
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