Role of Pericellular Matrix in Mesenchymal Stem Cell Deformation during Chondrogenic Differentiation
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Summary
Findings suggest that the PCM is the primary modulator of cell deformation during chondrogenic differentiation of hMSCs, which will be important for defining loading strategies and designing scaffold properties.
- Type
- article
- Published
- 2010-07-27
- Cited by
- 22
- References
- 73
- OpenAlex
- https://openalex.org/W1986545677
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:84016197
Keywords
Chondrogenesis, Mesenchymal stem cell, Cell biology, Scaffold, Progenitor cell
References
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- The influence of elaborated pericellular matrix on the deformation of isolated articular chondrocytes cultured in agarose.
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Cited by
- Nucleus Pulposus Cell Response to Confined and Unconfined Compression Implicates Mechanoregulation by Fluid Shear Stress
- Cartilage Tissue Engineering with Heterogeneous and Clonal Mesenchymal Stem Cell Populations: Multi-Scale Analysis of Maturation, Stability, and Response to Environmental Stressors
- Chondrons and the Pericellular Matrix of Chondrocytes
- Temporal and Spatial Changes in Cartilage-Matrix-Specific Gene Expression in Mesenchymal Stem Cells in Response to Dynamic Compression
- Alterations of overused supraspinatus tendon: A possible role of glycosaminoglycans and HARP/pleiotrophin in early tendon pathology
- Exploring the roles of integrin binding and cytoskeletal reorganization during mesenchymal stem cell mechanotransduction in soft and stiff hydrogels subjected to dynamic compression.
- Dynamic Compression Stimulates Proteoglycan Synthesis by Mesenchymal Stem Cells in the Absence of Chondrogenic Cytokines
- Roles of type VI collagen and decorin in human mesenchymal stem cell biophysics during chondrogenic differentiation.
- Differentiation of mesenchymal stem cells for cartilage tissue engineering: Individual and synergetic effects of three-dimensional environment and mechanical loading.
- Pericellular matrix enhances retention and cellular uptake of nanoparticles.
- Layered Alginate Constructs: A Platform for Co-culture of Heterogeneous Cell Populations.
- The Synergistic Effect of Cationic Moieties and GRGDSF-Peptides in Hydrogels on Neural Stem Cell Behavior.
- Deformability of Human Mesenchymal Stem Cells Is Dependent on Vimentin Intermediate Filaments
- Co-culture of chondrons and mesenchymal stromal cells reduces the loss of collagen VI and improves extracellular matrix production
- Single Cell Molecular Heterogeneity In Musculoskeletal Differentiation
- The Influence of Vimentin Intermediate Filaments on Human Mesenchymal Stem Cell Response to Physical Stimuli
- The vacuolated morphology of chordoma cells is dependent on cytokeratin intermediate filaments
- The effect of hydrostatic pressure on proteoglycan production in articular cartilage in vitro: a meta-analysis.
- Computational simulation of applying mechanical vibration to mesenchymal stem cell for mechanical modulation toward bone tissue engineering
- The Regulation of Pericellular Matrix Synthesis During Articular Cartilage Tissue Engineering
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