The Role of the Extracellular Matrix and Its Molecular and Cellular Regulators in Cancer Cell Plasticity

被引:293
作者
Poltavets, Valentina [1 ,2 ]
Kochetkova, Marina [1 ,2 ]
Pitson, Stuart M. [1 ,2 ,3 ]
Samuel, Michael S. [1 ,2 ,3 ]
机构
[1] SA Pathol, Ctr Canc Biol, Adelaide, SA, Australia
[2] Univ South Australia, Adelaide, SA, Australia
[3] Univ Adelaide, Fac Hlth Sci, Adelaide Med Sch, Adelaide, SA, Australia
基金
澳大利亚国家健康与医学研究理事会;
关键词
extracellular matrix; stroma; plasticity; cancer associated fibroblasts (CAF); tumor associated macrophages; tumor microenvironment; signaling pathways; cancer; EPITHELIAL-MESENCHYMAL TRANSITION; TUMOR-ASSOCIATED MACROPHAGES; TRANSFORMING-GROWTH-FACTOR; CATENIN SIGNALING PATHWAY; FOCAL-ADHESION-KINASE; BINDING PROTEIN RHO; DELTA T-CELLS; BREAST-CANCER; TGF-BETA; STEM-CELL;
D O I
10.3389/fonc.2018.00431
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
The microenvironment encompasses all components of a tumor other than the cancer cells themselves. It is highly heterogenous, comprising a cellular component that includes immune cells, fibroblasts, adipocytes, and endothelial cells, and a non-cellular component, which is a meshwork of polymeric proteins and accessory molecules, termed the extracellular matrix (ECM). The ECM provides both a biochemical and biomechanical context within which cancer cells exist. Cancer progression is dependent on the ability of cancer cells to traverse the ECM barrier, access the circulation and establish distal metastases. Communication between cancer cells and the microenvironment is therefore an important aspect of tumor progression. Significant progress has been made in identifying the molecular mechanisms that enable cancer cells to subvert the immune component of the microenvironment to facilitate tumor growth and spread. While much less is known about how the tumor cells adapt to changes in the ECM nor indeed how they influence ECM structure and composition, the importance of the ECM to cancer progression is now well established. Plasticity refers to the ability of cancer cells to modify their physiological characteristics, permitting them to survive hostile microenvironments and resist therapy. Examples include the acquisition of stemness characteristics and the epithelial-mesenchymal and mesenchymal-epithelial transitions. There is emerging evidence that the biochemical and biomechanical properties of the ECM in fluence cancer cell plasticity and vice versa. Outstanding challenges for the field remain the identification of the cellular mechanisms by which cancer cells establish tumor-promoting ECM characteristics and delineating the key molecular mechanisms underlying ECM-induced cancer cell plasticity. Here we summarize the current state of understanding about the relationships between cancer cells and the main stromal cell types of the microenvironment that determine ECM characteristics, and the key molecular pathways that govern this three-way interaction to regulate cancer cell plasticity. We postulate that a comprehensive understanding of this dynamic system will be required to fully exploit opportunities for targeting the ECM regulators of cancer cell plasticity.
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页数:19
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共 226 条
[1]   beta-catenin is a target for the ubiquitin-proteasome pathway [J].
Aberle, H ;
Bauer, A ;
Stappert, J ;
Kispert, A ;
Kemler, R .
EMBO JOURNAL, 1997, 16 (13) :3797-3804
[2]   Connective-tissue growth factor (CTGF) modulates cell signalling by BMP and TGF-β [J].
Abreu, JG ;
Ketpura, NI ;
Reversade, B ;
De Robertis, EM .
NATURE CELL BIOLOGY, 2002, 4 (08) :599-604
[3]   Tumor macrophages are pivotal constructors of tumor collagenous matrix [J].
Afik, Ran ;
Zigmond, Ehud ;
Vugman, Milena ;
Klepfish, Mordehay ;
Shimshoni, Elee ;
Pasmanik-Chor, Metsada ;
Shenoy, Anjana ;
Bassat, Elad ;
Halpern, Zamir ;
Geiger, Tamar ;
Sagi, Irit ;
Varol, Chen .
JOURNAL OF EXPERIMENTAL MEDICINE, 2016, 213 (11) :2315-2331
[4]   Actin machinery and mechanosensitivity in invadopodia, podosomes and focal adhesions [J].
Albiges-Rizo, Corinne ;
Destaing, Olivier ;
Fourcade, Bertrand ;
Planus, Emmanuelle ;
Block, Marc R. .
JOURNAL OF CELL SCIENCE, 2009, 122 (17) :3037-3049
[5]   Dynamic imaging of cancer growth and invasion: a modified skin-fold chamber model [J].
Alexander, Stephanie ;
Koehl, Gudrun E. ;
Hirschberg, Markus ;
Geissler, Edward K. ;
Friedl, Peter .
HISTOCHEMISTRY AND CELL BIOLOGY, 2008, 130 (06) :1147-1154
[6]   B-cell-derived lymphotoxin promotes castration-resistant prostate cancer [J].
Ammirante, Massimo ;
Luo, Jun-Li ;
Grivennikov, Sergei ;
Nedospasov, Sergei ;
Karin, Michael .
NATURE, 2010, 464 (7286) :302-U187
[7]  
Aoudjit F, 1997, INT J CANCER, V71, P71, DOI 10.1002/(SICI)1097-0215(19970328)71:1<71::AID-IJC13>3.3.CO
[8]  
2-O
[9]   TAMeless traitors: macrophages in cancer progression and metastasis [J].
Aras, Shweta ;
Zaidi, M. Raza .
BRITISH JOURNAL OF CANCER, 2017, 117 (11) :1583-1591
[10]   EXPRESSION AND SECRETION OF TYPE-BETA TRANSFORMING GROWTH-FACTOR BY ACTIVATED HUMAN MACROPHAGES [J].
ASSOIAN, RK ;
FLEURDELYS, BE ;
STEVENSON, HC ;
MILLER, PJ ;
MADTES, DK ;
RAINES, EW ;
ROSS, R ;
SPORN, MB .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1987, 84 (17) :6020-6024