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Patient-Derived Tumor Explants As a "Live" Preclinical Platform for Predicting Drug Resistance in Patients
Published on: February 7, 2021
Tumor microenvironment and epithelial mesenchymal transition as targets to overcome tumor multidrug resistance
Nuray Erin1, Jelena Grahovac2, Anamaria Brozovic3
1Department of Medical Pharmacology, Immunopharmacology and Immunooncology Unit, School of Medicine, Akdeniz University, Turkey.
Abstract:
It is well established that multifactorial drug resistance hinders successful cancer treatment. Tumor cell interactions with the tumor microenvironment (TME) are crucial in epithelial-mesenchymal transition (EMT) and multidrug resistance (MDR). TME-induced factors secreted by cancer cells and cancer-associated fibroblasts (CAFs) create an inflammatory microenvironment by recruiting immune cells. CD11b+/Gr-1+ myeloid-derived suppressor cells (MDSCs) and inflammatory tumor associated macrophages (TAMs) are main immune cell types which further enhance chronic inflammation. Chronic inflammation nurtures tumor-initiating/cancer stem-like cells (CSCs), induces both EMT and MDR leading to tumor relapses. Pro-thrombotic microenvironment created by inflammatory cytokines and chemokines from TAMs, MDSCs and CAFs is also involved in EMT and MDR. MDSCs are the most common mediators of immunosuppression and are also involved in resistance to targeted therapies, e.g. BRAF inhibitors and oncolytic viruses-based therapies. Expansion of both cancer and stroma cells causes hypoxia by hypoxia-inducible transcription factors (e.g. HIF-1α) resulting in drug resistance. TME factors induce the expression of transcriptional EMT factors, MDR and metabolic adaptation of cancer cells. Promoters of several ATP-binding cassette (ABC) transporter genes contain binding sites for canonical EMT transcription factors, e.g. ZEB, TWIST and SNAIL. Changes in glycolysis, oxidative phosphorylation and autophagy during EMT also promote MDR. Conclusively, EMT signaling simultaneously increases MDR. Owing to the multifactorial nature of MDR, targeting one mechanism seems to be non-sufficient to overcome resistance. Targeting inflammatory processes by immune modulatory compounds such as mTOR inhibitors, demethylating agents, low-dosed histone deacetylase inhibitors may decrease MDR. Targeting EMT and metabolic adaptation by small molecular inhibitors might also reverse MDR. In this review, we summarize evidence for TME components as causative factors of EMT and anticancer drug resistance.
Insights
The tumor microenvironment (TME) drives cancer drug resistance by promoting inflammation and epithelial-mesenchymal transition (EMT). Targeting TME factors and EMT pathways is key to overcoming multidrug resistance (MDR).
Area of Science:
- Oncology
- Cancer Biology
- Immunology
Background:
- Multifactorial drug resistance significantly hinders effective cancer treatment.
- Tumor cell interactions within the tumor microenvironment (TME) are critical drivers of epithelial-mesenchymal transition (EMT) and multidrug resistance (MDR).
- The TME fosters chronic inflammation through secreted factors, immune cell recruitment (MDSCs, TAMs), and pro-thrombotic conditions, which fuel cancer stem cells (CSCs), EMT, and MDR.
Purpose of the Study:
- To review the causative roles of TME components in inducing EMT and anticancer drug resistance.
- To highlight the multifactorial nature of MDR and the limitations of targeting single resistance mechanisms.
- To explore potential therapeutic strategies targeting TME-driven resistance.
Main Methods:
- Literature review summarizing evidence on TME-induced EMT and MDR.
- Analysis of molecular mechanisms linking TME factors, inflammation, EMT, and drug resistance.
- Discussion of therapeutic interventions targeting TME components and EMT pathways.
Main Results:
- TME factors, including those from CAFs, MDSCs, and TAMs, promote inflammation, EMT, and MDR.
- Hypoxia, driven by HIF-1α, and metabolic adaptations (glycolysis, autophagy) during EMT contribute to drug resistance.
- EMT transcription factors (ZEB, TWIST, SNAIL) directly upregulate MDR-associated genes (e.g., ABC transporters).
Conclusions:
- EMT signaling is intrinsically linked to increased MDR, making simultaneous targeting crucial.
- Overcoming MDR requires addressing the multifactorial contributions of the TME, inflammation, and EMT.
- Therapeutic strategies involving immune modulatory compounds and small molecular inhibitors targeting EMT and metabolic pathways show promise for reversing MDR.
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