Marrow‐Derived stem cell motility in 3D synthetic scaffold is governed by geometry along with adhesivity and stiffness
Open Access
- 29 December 2010
- journal article
- research article
- Published by Wiley in Biotechnology & Bioengineering
- Vol. 108 (5), 1181-1193
- https://doi.org/10.1002/bit.23027
Abstract
Design of 3D scaffolds that can facilitate proper survival, proliferation, and differentiation of progenitor cells is a challenge for clinical applications involving large connective tissue defects. Cell migration within such scaffolds is a critical process governing tissue integration. Here, we examine effects of scaffold pore diameter, in concert with matrix stiffness and adhesivity, as independently tunable parameters that govern marrow‐derived stem cell motility. We adopted an “inverse opal” processing technique to create synthetic scaffolds by crosslinking poly(ethylene glycol) at different densities (controlling matrix elastic moduli or stiffness) and small doses of a heterobifunctional monomer (controlling matrix adhesivity) around templating beads of different radii. As pore diameter was varied from 7 to 17 µm (i.e., from significantly smaller than the spherical cell diameter to approximately cell diameter), it displayed a profound effect on migration of these stem cells—including the degree to which motility was sensitive to changes in matrix stiffness and adhesivity. Surprisingly, the highest probability for substantive cell movement through pores was observed for an intermediate pore diameter, rather than the largest pore diameter, which exceeded cell diameter. The relationships between migration speed, displacement, and total path length were found to depend strongly on pore diameter. We attribute this dependence to convolution of pore diameter and void chamber diameter, yielding different geometric environments experienced by the cells within. Bioeng. 2011; 108:1181–1193.Keywords
This publication has 50 references indexed in Scilit:
- Mesenchymal Stem Cell Mechanics from the Attached to the Suspended StateBiophysical Journal, 2010
- The dependence of MG63 osteoblast responses to (meth)acrylate-based networks on chemical structure and stiffnessBiomaterials, 2010
- Dimensionality Controls Cytoskeleton Assembly and Metabolism of Fibroblast Cells in Response to Rigidity and ShapePLOS ONE, 2010
- One-dimensional topography underlies three-dimensional fibrillar cell migrationThe Journal of cell biology, 2009
- Controlling integrin specificity and stem cell differentiation in 2D and 3D environments through regulation of fibronectin domain stabilityBiomaterials, 2008
- Epidermal Growth Factor–induced Enhancement of Glioblastoma Cell Migration in 3D Arises from an Intrinsic Increase in Speed But an Extrinsic Matrix- and Proteolysis-dependent Increase in PersistenceMolecular Biology of the Cell, 2008
- Quantitative intracellular magnetic nanoparticle uptake measured by live cell magnetophoresisThe FASEB Journal, 2008
- Migration of tumor cells in 3D matrices is governed by matrix stiffness along with cell-matrix adhesion and proteolysisProceedings of the National Academy of Sciences, 2006
- RETRACTED ARTICLE: Pluripotency of mesenchymal stem cells derived from adult marrowNature, 2002
- Integrin-ligand binding properties govern cell migration speed through cell-substratum adhesivenessNature, 1997