ACS Applied Materials & Interfaces · 2016 · 296 citations · 26 references
Tissue EngineeringEngineeringBiomaterials DesignBiofabricationBiomedical EngineeringRegenerative MedicineTissue Imaging3D ImagingBreast ImagingMatrix BiologyBone MatricesTabletop Stereolithography 3DBioprintingFunctional Tissue EngineeringCell Biology3D Bioprinting3D PrintingBreast CancerMedicineCell-laden Bone MatrixBiocompatible MaterialExtracellular Matrix
Metastasis is one of the deadliest consequences of breast cancer, with bone being one of the primary sites of occurrence. Insufficient 3D biomimetic models currently exist to replicate this process in vitro. In this study, we developed a biomimetic bone matrix using 3D bioprinting technology to investigate the interaction between breast cancer (BrCa) cells and bone stromal cells (fetal osteoblasts and human bone marrow mesenchymal stem cells (MSCs)). A tabletop stereolithography 3D bioprinter was employed to fabricate a series of bone matrices consisting of osteoblasts or MSCs encapsulated in gelatin methacrylate (GelMA) hydrogel with nanocrystalline hydroxyapatite (nHA). When BrCa cells were introduced into the stromal cell-laden bioprinted matrices, we found that the growth of BrCa cells was enhanced by the presence of osteoblasts or MSCs, whereas the proliferation of the osteoblasts or MSCs was inhibited by the BrCa cells. The BrCa cells co-cultured with MSCs or osteoblasts presented increased vascular endothelial growth factor (VEGF) secretion in comparison to that of monocultured BrCa cells. Additionally, the alkaline phosphatase activity of MSCs or osteoblasts was reduced after BrCa cell co-culture. These results demonstrate that the 3D bioprinted matrix, with BrCa cells and bone stromal cells, provides a suitable model with which to study the interactive effects of cells in the context of an artificial bone microenvironment and thus may serve as a valuable tool for the investigation of postmetastatic breast cancer progression in bone.
26
Multilineage Potential of Adult Human Mesenchymal Stem Cells
Mark F. Pittenger, Alastair M. Mackay, Stephen C. Beck et al. · Science · 1999 · 20.9K citations
Adult Stem Cell, Multilineage Potential, Biomedical Engineering +16
Rebecca L. Siegel, Kimberly D. Miller, Ahmedin Jemal · CA A Cancer Journal for Clinicians · 2016 · 16.1K citations · Full text
Matrix Elasticity Directs Stem Cell Lineage Specification
Adam J. Engler, Shamik Sen, H. Lee Sweeney et al. · Cell · 2006 · 13.5K citations · Full text
Arnold I. Caplan · Journal of Orthopaedic Research® · 1991 · 6.5K citations
Mesenchymal stem cells within tumour stroma promote breast cancer metastasis
Antoine E. Karnoub, Ajeeta B. Dash, Annie P. Vo et al. · Nature · 2007 · 3.2K citations
Regenerative Medicine, Mesenchymal Stem Cells, Breast Oncology +12