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Implementation of In Vitro Drug Resistance Assays: Maximizing the Potential for Uncovering Clinically Relevant Resistance Mechanisms
Published on: December 9, 2015
Impact of cancer metabolism on therapy resistance - Clinical implications
Ana Cristina Gonçalves1, Elena Richiardone2, Joana Jorge1
1Laboratory of Oncobiology and Hematology (LOH) and University Clinic of Hematology, Faculty of Medicine (FMUC), University of Coimbra, Coimbra, Portugal; Coimbra Institute for Clinical and Biomedical Research (iCBR) - Group of Environment Genetics and Oncobiology (CIMAGO), FMUC, University of Coimbra, Portugal; Center for Innovative Biomedicine and Biotechnology (CIBB), Coimbra, Portugal.
Abstract:
Despite an increasing arsenal of anticancer therapies, many patients continue to have poor outcomes due to the therapeutic failures and tumor relapses. Indeed, the clinical efficacy of anticancer therapies is markedly limited by intrinsic and/or acquired resistance mechanisms that can occur in any tumor type and with any treatment. Thus, there is an urgent clinical need to implement fundamental changes in the tumor treatment paradigm by the development of new experimental strategies that can help to predict the occurrence of clinical drug resistance and to identify alternative therapeutic options. Apart from mutation-driven resistance mechanisms, tumor microenvironment (TME) conditions generate an intratumoral phenotypic heterogeneity that supports disease progression and dismal outcomes. Tumor cell metabolism is a prototypical example of dynamic, heterogeneous, and adaptive phenotypic trait, resulting from the combination of intrinsic [(epi)genetic changes, tissue of origin and differentiation dependency] and extrinsic (oxygen and nutrient availability, metabolic interactions within the TME) factors, enabling cancer cells to survive, metastasize and develop resistance to anticancer therapies. In this review, we summarize the current knowledge regarding metabolism-based mechanisms conferring adaptive resistance to chemo-, radio-and immunotherapies as well as targeted therapies. Furthermore, we report the role of TME-mediated intratumoral metabolic heterogeneity in therapy resistance and how adaptations in amino acid, glucose, and lipid metabolism support the growth of therapy-resistant cancers and/or cellular subpopulations. We also report the intricate interplay between tumor signaling and metabolic pathways in cancer cells and discuss how manipulating key metabolic enzymes and/or providing dietary changes may help to eradicate relapse-sustaining cancer cells. Finally, in the current era of personalized medicine, we describe the strategies that may be applied to implement metabolic profiling for tumor imaging, biomarker identification, selection of tailored treatments and monitoring therapy response during the clinical management of cancer patients.
Insights
Cancer cells develop resistance to therapies through metabolic adaptations and tumor microenvironment interactions. Understanding tumor metabolism is key to predicting resistance and developing personalized treatments to improve patient outcomes.
Area of Science:
- Oncology
- Cancer Metabolism
- Tumor Microenvironment
Background:
- Therapeutic failures and tumor relapses limit anticancer therapy efficacy.
- Intrinsic and acquired resistance mechanisms contribute to poor patient outcomes.
- Tumor microenvironment (TME) conditions drive intratumoral heterogeneity and disease progression.
Purpose of the Study:
- To review metabolism-based mechanisms of adaptive resistance to various cancer therapies.
- To explore the role of TME-mediated metabolic heterogeneity in therapy resistance.
- To discuss strategies for implementing metabolic profiling in personalized cancer medicine.
Main Methods:
- Literature review of current knowledge on cancer metabolism and therapy resistance.
- Analysis of how TME influences metabolic adaptations.
- Discussion of potential therapeutic strategies targeting cancer metabolism.
Main Results:
- Metabolic adaptations in amino acid, glucose, and lipid metabolism support therapy-resistant cancer growth.
- Intratumoral metabolic heterogeneity driven by the TME contributes to treatment failure.
- Interplay between tumor signaling and metabolic pathways influences resistance.
Conclusions:
- Targeting cancer cell metabolism and leveraging metabolic profiling can overcome therapy resistance.
- Manipulating key metabolic enzymes or dietary interventions may eradicate relapse-sustaining cancer cells.
- Metabolic profiling holds promise for personalized medicine, including tumor imaging, biomarker identification, and therapy monitoring.
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