Animal Models to Study Cancer and Its Microenvironment
- PMID: 32130710
- DOI: 10.1007/978-3-030-34025-4_20
Animal Models to Study Cancer and Its Microenvironment
Erratum in
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Correction to: Animal Models to Study Cancer and Its Microenvironment.Adv Exp Med Biol. 2020;1219:C1. doi: 10.1007/978-3-030-34025-4_24. Adv Exp Med Biol. 2020. PMID: 38379237 No abstract available.
Abstract
Cancers are complex tissues composed by genetically altered cancer cells and stromal elements such as inflammatory/immune cells, fibroblasts, endothelial cells and pericytes, neuronal cells, and a non-cellular component, the extracellular matrix. The complex network of interactions and crosstalk established between cancer cells and the supportig cellular and non-cellular components of the microenvironment are of extreme importance for tumor initiation and progression, strongly impacting the course and the outcome of the disease. Therefore, a better understanding of the tumorigenic processes implies the combined study of the cancer cell and the biologic, chemical and mechanic constituents of the tumor microenvironment, as their concerted action plays a major role in the carcinogenic pathway and is a key determinant of the efficacy of anti-cancer treatments. The use of animal models (e.g. Mouse, Zebrafish and Drosophila) to study cancer has greatly impacted our understanding of the processes governing initiation, progression and metastasis and allowed the discovery and pre-clinical validation of novel cancer treatments as it allows to recreate tumor development in a more pathophysiologic environment.
Keywords: Animal models; Cancer progression; Drosophila; Metastasis; Mouse; Tumor microenvironment (TME); Zebrafish.
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References
-
- Amatruda JF, Patton EE (2008) Genetic models of cancer in zebrafish. Int Rev Cell Mol Biol 271:1–34. https://doi.org/10.1016/S1937-6448(08)01201-X - DOI - PubMed
-
- Antonio N, Bønnelykke-Behrndtz ML, Ward LC, Collin J, Christensen IJ, Steiniche T et al (2015) The wound inflammatory response exacerbates growth of pre-neoplastic cells and progression to cancer. EMBO J 34(17):2219–2236. https://doi.org/10.15252/embj.201490147 - DOI - PubMed - PMC
-
- Bangi E (2013) Drosophila at the intersection of infection, inflammation, and cancer. Front Cell Infect Microbiol 3:103. https://doi.org/10.3389/fcimb.2013.00103 - DOI - PubMed - PMC
-
- Blomme A, Van Simaeys G, Doumont G, Costanza B, Bellier J, Otaka Y et al (2018) Murine stroma adopts a human-like metabolic phenotype in the PDX model of colorectal cancer and liver metastases. Oncogene 37(9):1237–1250. https://doi.org/10.1038/s41388-017-0018-x - DOI - PubMed
-
- Calles A, Rubio-Viqueira B, Hidalgo M (2013) Primary human non-small cell lung and pancreatic tumorgraft models–utility and applications in drug discovery and tumor biology. Curr Protoc Pharmacol Chapter 14(1), Unitas 14.26–14.26.21. https://doi.org/10.1002/0471141755.ph1426s61
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