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The Role of Tumor Microenvironment in Chemoresistance: 3D Extracellular Matrices as Accomplices

Background: The functional interplay between tumor cells and their adjacent stroma has been suggested to play crucial roles in the initiation and progression of tumors and the effectiveness of chemotherapy. The extracellular matrix (ECM), a complex network of extracellular proteins, provides both ph...

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Autores principales: Senthebane, Dimakatso Alice, Jonker, Tina, Rowe, Arielle, Thomford, Nicholas Ekow, Munro, Daniella, Dandara, Collet, Wonkam, Ambroise, Govender, Dhirendra, Calder, Bridget, Soares, Nelson C., Blackburn, Jonathan M., Parker, M. Iqbal, Dzobo, Kevin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6213202/
https://www.ncbi.nlm.nih.gov/pubmed/30241395
http://dx.doi.org/10.3390/ijms19102861
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author Senthebane, Dimakatso Alice
Jonker, Tina
Rowe, Arielle
Thomford, Nicholas Ekow
Munro, Daniella
Dandara, Collet
Wonkam, Ambroise
Govender, Dhirendra
Calder, Bridget
Soares, Nelson C.
Blackburn, Jonathan M.
Parker, M. Iqbal
Dzobo, Kevin
author_facet Senthebane, Dimakatso Alice
Jonker, Tina
Rowe, Arielle
Thomford, Nicholas Ekow
Munro, Daniella
Dandara, Collet
Wonkam, Ambroise
Govender, Dhirendra
Calder, Bridget
Soares, Nelson C.
Blackburn, Jonathan M.
Parker, M. Iqbal
Dzobo, Kevin
author_sort Senthebane, Dimakatso Alice
collection PubMed
description Background: The functional interplay between tumor cells and their adjacent stroma has been suggested to play crucial roles in the initiation and progression of tumors and the effectiveness of chemotherapy. The extracellular matrix (ECM), a complex network of extracellular proteins, provides both physical and chemicals cues necessary for cell proliferation, survival, and migration. Understanding how ECM composition and biomechanical properties affect cancer progression and response to chemotherapeutic drugs is vital to the development of targeted treatments. Methods: 3D cell-derived-ECMs and esophageal cancer cell lines were used as a model to investigate the effect of ECM proteins on esophageal cancer cell lines response to chemotherapeutics. Immunohistochemical and qRT-PCR evaluation of ECM proteins and integrin gene expression was done on clinical esophageal squamous cell carcinoma biopsies. Esophageal cancer cell lines (WHCO1, WHCO5, WHCO6, KYSE180, KYSE 450 and KYSE 520) were cultured on decellularised ECMs (fibroblasts-derived ECM; cancer cell-derived ECM; combinatorial-ECM) and treated with 0.1% Dimethyl sulfoxide (DMSO), 4.2 µM cisplatin, 3.5 µM 5-fluorouracil and 2.5 µM epirubicin for 24 h. Cell proliferation, cell cycle progression, colony formation, apoptosis, migration and activation of signaling pathways were used as our study endpoints. Results: The expression of collagens, fibronectin and laminins was significantly increased in esophageal squamous cell carcinomas (ESCC) tumor samples compared to the corresponding normal tissue. Decellularised ECMs abrogated the effect of drugs on cancer cell cycling, proliferation and reduced drug induced apoptosis by 20–60% that of those plated on plastic. The mitogen-activated protein kinase-extracellular signal-regulated kinase (MEK-ERK) and phosphoinositide 3-kinase-protein kinase B (PI3K/Akt) signaling pathways were upregulated in the presence of the ECMs. Furthermore, our data show that concomitant addition of chemotherapeutic drugs and the use of collagen- and fibronectin-deficient ECMs through siRNA inhibition synergistically increased cancer cell sensitivity to drugs by 30–50%, and reduced colony formation and cancer cell migration. Conclusion: Our study shows that ECM proteins play a key role in the response of cancer cells to chemotherapy and suggest that targeting ECM proteins can be an effective therapeutic strategy against chemoresistant tumors.
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spelling pubmed-62132022018-11-14 The Role of Tumor Microenvironment in Chemoresistance: 3D Extracellular Matrices as Accomplices Senthebane, Dimakatso Alice Jonker, Tina Rowe, Arielle Thomford, Nicholas Ekow Munro, Daniella Dandara, Collet Wonkam, Ambroise Govender, Dhirendra Calder, Bridget Soares, Nelson C. Blackburn, Jonathan M. Parker, M. Iqbal Dzobo, Kevin Int J Mol Sci Article Background: The functional interplay between tumor cells and their adjacent stroma has been suggested to play crucial roles in the initiation and progression of tumors and the effectiveness of chemotherapy. The extracellular matrix (ECM), a complex network of extracellular proteins, provides both physical and chemicals cues necessary for cell proliferation, survival, and migration. Understanding how ECM composition and biomechanical properties affect cancer progression and response to chemotherapeutic drugs is vital to the development of targeted treatments. Methods: 3D cell-derived-ECMs and esophageal cancer cell lines were used as a model to investigate the effect of ECM proteins on esophageal cancer cell lines response to chemotherapeutics. Immunohistochemical and qRT-PCR evaluation of ECM proteins and integrin gene expression was done on clinical esophageal squamous cell carcinoma biopsies. Esophageal cancer cell lines (WHCO1, WHCO5, WHCO6, KYSE180, KYSE 450 and KYSE 520) were cultured on decellularised ECMs (fibroblasts-derived ECM; cancer cell-derived ECM; combinatorial-ECM) and treated with 0.1% Dimethyl sulfoxide (DMSO), 4.2 µM cisplatin, 3.5 µM 5-fluorouracil and 2.5 µM epirubicin for 24 h. Cell proliferation, cell cycle progression, colony formation, apoptosis, migration and activation of signaling pathways were used as our study endpoints. Results: The expression of collagens, fibronectin and laminins was significantly increased in esophageal squamous cell carcinomas (ESCC) tumor samples compared to the corresponding normal tissue. Decellularised ECMs abrogated the effect of drugs on cancer cell cycling, proliferation and reduced drug induced apoptosis by 20–60% that of those plated on plastic. The mitogen-activated protein kinase-extracellular signal-regulated kinase (MEK-ERK) and phosphoinositide 3-kinase-protein kinase B (PI3K/Akt) signaling pathways were upregulated in the presence of the ECMs. Furthermore, our data show that concomitant addition of chemotherapeutic drugs and the use of collagen- and fibronectin-deficient ECMs through siRNA inhibition synergistically increased cancer cell sensitivity to drugs by 30–50%, and reduced colony formation and cancer cell migration. Conclusion: Our study shows that ECM proteins play a key role in the response of cancer cells to chemotherapy and suggest that targeting ECM proteins can be an effective therapeutic strategy against chemoresistant tumors. MDPI 2018-09-20 /pmc/articles/PMC6213202/ /pubmed/30241395 http://dx.doi.org/10.3390/ijms19102861 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Senthebane, Dimakatso Alice
Jonker, Tina
Rowe, Arielle
Thomford, Nicholas Ekow
Munro, Daniella
Dandara, Collet
Wonkam, Ambroise
Govender, Dhirendra
Calder, Bridget
Soares, Nelson C.
Blackburn, Jonathan M.
Parker, M. Iqbal
Dzobo, Kevin
The Role of Tumor Microenvironment in Chemoresistance: 3D Extracellular Matrices as Accomplices
title The Role of Tumor Microenvironment in Chemoresistance: 3D Extracellular Matrices as Accomplices
title_full The Role of Tumor Microenvironment in Chemoresistance: 3D Extracellular Matrices as Accomplices
title_fullStr The Role of Tumor Microenvironment in Chemoresistance: 3D Extracellular Matrices as Accomplices
title_full_unstemmed The Role of Tumor Microenvironment in Chemoresistance: 3D Extracellular Matrices as Accomplices
title_short The Role of Tumor Microenvironment in Chemoresistance: 3D Extracellular Matrices as Accomplices
title_sort role of tumor microenvironment in chemoresistance: 3d extracellular matrices as accomplices
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6213202/
https://www.ncbi.nlm.nih.gov/pubmed/30241395
http://dx.doi.org/10.3390/ijms19102861
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