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Updated: May 26, 2026

A Mimic of the Tumor Microenvironment: A Simple Method for Generating Enriched Cell Populations and Investigating Intercellular Communication
Published on: September 20, 2016
Different modalities of intercellular membrane exchanges mediate cell-to-cell p-glycoprotein transfers in MCF-7
Jennifer Pasquier1, Ludovic Galas, Céline Boulangé-Lecomte
1Laboratory of Ecotoxicology, University of Le Havre, 76058 Le Havre, France.
Abstract:
Multi-drug resistance (MDR) is a phenomenon by which tumor cells exhibit resistance to a variety of chemically unrelated chemotherapeutic drugs. The classical form of multidrug resistance is connected to overexpression of membrane P-glycoprotein (P-gp), which acts as an energy dependent drug efflux pump. P-glycoprotein expression is known to be controlled by genetic and epigenetic mechanisms. Until now processes of P-gp gene up-regulation and resistant cell selection were considered sufficient to explain the emergence of MDR phenotype within a cell population. Recently, however, "non-genetic" acquisitions of MDR by cell-to-cell P-gp transfers have been pointed out. In the present study we show that intercellular transfers of functional P-gp occur by two different but complementary modalities through donor-recipient cells interactions in the absence of drug selection pressure. P-glycoprotein and drug efflux activity transfers were followed over 7 days by confocal microscopy and flow cytometry in drug-sensitive parental MCF-7 breast cancer cells co-cultured with P-gp overexpressing resistant variants. An early process of remote transfer was established based on the release and binding of P-gp-containing microparticles. Microparticle-mediated transfers were detected after only 4 h of incubation. We also identify an alternative mode of transfer by contact, consisting of cell-to-cell P-gp trafficking by tunneling nanotubes bridging neighboring cells. Our findings supply new mechanistic evidences for the extragenetic emergence of MDR in cancer cells and indicate that new treatment strategies designed to overcome MDR may include inhibition of both microparticles and Tunneling nanotube-mediated intercellular P-gp transfers.
Insights
Tumor cells can gain multi-drug resistance (MDR) through non-genetic means. This study reveals functional P-glycoprotein (P-gp) transfers via microparticles and tunneling nanotubes, even without drug pressure.
Area of Science:
- Cancer Biology
- Molecular Oncology
- Cellular Mechanisms
Background:
- Multi-drug resistance (MDR) in tumors is often linked to P-glycoprotein (P-gp) efflux pumps.
- Traditional MDR understanding focuses on genetic/epigenetic P-gp up-regulation.
- Emerging evidence suggests non-genetic MDR acquisition via intercellular P-gp transfer.
Purpose of the Study:
- To investigate non-genetic, intercellular transfer of functional P-glycoprotein (P-gp).
- To elucidate the mechanisms of P-gp transfer between cancer cells.
- To explore novel therapeutic targets for overcoming MDR.
Main Methods:
- Co-culture of drug-sensitive MCF-7 cells with P-gp overexpressing resistant variants.
- Confocal microscopy and flow cytometry to track P-gp and drug efflux activity over 7 days.
- Analysis of microparticle-mediated and tunneling nanotube-mediated transfer mechanisms.
Main Results:
- Functional P-gp and drug efflux activity were transferred between cells without drug selection.
- Early P-gp transfer occurred via microparticles within 4 hours.
- Contact-dependent transfer via tunneling nanotubes was also identified.
Conclusions:
- Intercellular transfer of functional P-gp is a significant mechanism for extragenetic MDR emergence.
- Two distinct pathways, microparticles and tunneling nanotubes, mediate P-gp transfer.
- Inhibiting these transfer mechanisms may offer new strategies to combat MDR.
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