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The tumor microenvironment as a determinant of drug response and resistance
1Department of Interdisciplinary Oncology, H. Lee Moffitt Cancer Center, University of South Florida, Tampa, Florida, USA
Abstract:
Classically, studies of drug resistance in cancer have focused on the molecular biology of single cancer cells. These types of studies have provided important information regarding certain drug resistance mechanisms, including mechanisms that reduce intracellular drug accumulation, alter or repair drug-induced damage, and reduce drug-induced apoptosis. While these cellular mechanisms undoubtedly contribute to the overall phenomenon of drug resistance, it is now evident that the tumor cell microenvironment also influences how a tumor cell behaves and responds to cytotoxic drugs or radiation. Two different forms of tumor cell-environmental interaction may explain how some tumor cells survive initial drug exposure and eventually express classical mechanisms of drug resistance. The first form involves soluble mediators, such as interleukins, that are secreted by non-tumor, stromal cells. Interleukin-6 (IL-6) is a classical example of how a soluble mediator secreted by the tumor microenvironment is capable of enhancing tumor cell survival and perhaps blocking apoptosis. The second form of tumor cell-environment interaction requires direct cell contact and has been given the term cell-adhesion-mediated drug resistance (CAM-DR). In this case, binding extracellular matrix ligands in the tumor microenvironment may activate cell adhesion molecules, such as the integrins, and these interactions result in the activation of signal transduction pathways that block drug-induced apoptosis. Interrupting the tumor cell-environment interactions or the associated signal transduction pathways may represent a new approach for the treatment of cancer. Copyright 1999 Harcourt Publishers Ltd.
Insights
Cancer cells develop drug resistance through microenvironment interactions. Soluble mediators like Interleukin-6 (IL-6) and cell adhesion promote survival, impacting treatment efficacy.
Area of Science:
- Oncology
- Cell Biology
- Cancer Research
Background:
- Traditional cancer drug resistance studies focus on intrinsic cellular mechanisms.
- These include altered drug accumulation, repair of damage, and apoptosis evasion.
- Emerging evidence highlights the tumor microenvironment's role in drug resistance.
Purpose of the Study:
- To explore how tumor cell-environment interactions influence cancer drug resistance.
- To identify mechanisms beyond cellular resistance contributing to treatment failure.
Main Methods:
- Review of existing literature on tumor microenvironment and drug resistance.
- Analysis of soluble mediators (e.g., Interleukin-6) and cell adhesion-mediated drug resistance (CAM-DR).
Main Results:
- The tumor microenvironment significantly impacts cancer cell response to cytotoxic drugs and radiation.
- Soluble mediators like IL-6 enhance tumor cell survival and may inhibit apoptosis.
- Cell-adhesion-mediated drug resistance (CAM-DR) involves integrin activation, leading to pathways that block apoptosis.
Conclusions:
- Tumor microenvironment interactions, via soluble factors and cell adhesion, are critical in developing drug resistance.
- Targeting these tumor cell-environment interactions or associated signaling pathways offers a novel therapeutic strategy for cancer treatment.