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Bioengineered scaffolds for 3D culture demonstrate extracellular matrix-mediated mechanisms of chemotherapy resistance in glioblastoma
- Source :
- Xiao, Weikun; Wang, Shanshan; Zhang, Rongyu; Sohrabi, Alireza; Yu, Qi; Liu, Sihan; et al.(2019). Bioengineered scaffolds for 3D culture demonstrate extracellular matrix-mediated mechanisms of chemotherapy resistance in glioblastoma.. Matrix biology : journal of the International Society for Matrix Biology. doi: 10.1016/j.matbio.2019.04.003. UC Office of the President: Research Grants Program Office (RGPO). Retrieved from: http://www.escholarship.org/uc/item/7nj0c0z5, Matrix Biol
- Publication Year :
- 2020
- Publisher :
- eScholarship, University of California, 2020.
-
Abstract
- Originating in the brain, glioblastoma (GBM) is a highly lethal and virtually incurable cancer, in large part because it readily develops resistance to treatments. While numerous studies have investigated mechanisms enabling GBM cells to evade chemotherapy-induced apoptosis, few have addressed how their surrounding extracellular matrix (ECM) acts to promote their survival. Here, we employed a biomaterial-based, 3D culture platform to investigate systematically how interactions between patient-derived GBM cells and the brain ECM promote resistance to alkylating chemotherapies — including temozolomide, which is used routinely in clinical practice. Scaffolds for 3D culture were fabricated from hyaluronic acid (HA) — a major structural and bioactive component of the brain ECM — and functionalized with the RGD (arginine-glycine-aspartic acid) tripeptide to provide sites for integrin engagement. Data demonstrate that cooperative engagement of CD44, through HA, and integrin α(V), through RGD, facilitates resistance to alkylating chemotherapies through co-activation of Src, which inhibited downstream expression of BCL-2 family pro-apoptotic factors. In sum, a bioengineered, 3D culture platform was used to gain new mechanistic insights into how ECM in the brain tumor microenvironment promotes resistance to chemotherapy and suggests potential avenues for the development of novel, matrix-targeted combination therapies designed to suppress chemotherapy resistance in GBM.
- Subjects :
- 0301 basic medicine
Drug Resistance
Dasatinib
Cilengitide
Integrin
Extracellular matrix
chemistry.chemical_compound
0302 clinical medicine
Cell Movement
Models
BCL-2 family
Hyaluronic acid
Tumor Microenvironment
Hyaluronic Acid
CD44
Cancer
Tumor
biology
Tissue Scaffolds
Brain Neoplasms
Biological Sciences
Extracellular Matrix
Gene Expression Regulation, Neoplastic
Hyaluronan Receptors
030220 oncology & carcinogenesis
Oligopeptides
medicine.drug
Proto-oncogene tyrosine-protein kinase Src
Src
Biotechnology
3D culture
Biochemistry & Molecular Biology
Bioengineering
Models, Biological
Article
Cell Line
03 medical and health sciences
Rare Diseases
Cell Line, Tumor
medicine
Temozolomide
Humans
Chemotherapy
Molecular Biology
Cell Proliferation
Neoplastic
Bcl-2 family
Neurosciences
Integrin alphaV
Biological
Brain Disorders
Brain Cancer
030104 developmental biology
chemistry
Gene Expression Regulation
Drug Resistance, Neoplasm
biology.protein
Cancer research
Neoplasm
Glioblastoma
Subjects
Details
- Database :
- OpenAIRE
- Journal :
- Xiao, Weikun; Wang, Shanshan; Zhang, Rongyu; Sohrabi, Alireza; Yu, Qi; Liu, Sihan; et al.(2019). Bioengineered scaffolds for 3D culture demonstrate extracellular matrix-mediated mechanisms of chemotherapy resistance in glioblastoma.. Matrix biology : journal of the International Society for Matrix Biology. doi: 10.1016/j.matbio.2019.04.003. UC Office of the President: Research Grants Program Office (RGPO). Retrieved from: http://www.escholarship.org/uc/item/7nj0c0z5, Matrix Biol
- Accession number :
- edsair.doi.dedup.....eb31ef38faf9d80a6ad344dcdf7e0e2b