Substrate Compliance Directs the Osteogenic Lineages of Stem Cells from the Human Apical Papilla via the Processes of Mechanosensing and Mechanotransduction

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Substrate Compliance Directs the Osteogenic Lineages of Stem Cells from the  Human Apical Papilla via the Processes of Mechanosensing and  Mechanotransduction
Substrate Stiffness and Composition Specifically Direct Differentiation of Induced Pluripotent Stem Cells
Substrate Compliance Directs the Osteogenic Lineages of Stem Cells from the  Human Apical Papilla via the Processes of Mechanosensing and  Mechanotransduction
Trends in mechanobiology guided tissue engineering and tools to study cell- substrate interactions: a brief review, Biomaterials Research
Substrate Compliance Directs the Osteogenic Lineages of Stem Cells from the  Human Apical Papilla via the Processes of Mechanosensing and  Mechanotransduction
PDF] Fibronectin and stem cell differentiation – lessons from chondrogenesis
Substrate Compliance Directs the Osteogenic Lineages of Stem Cells from the  Human Apical Papilla via the Processes of Mechanosensing and  Mechanotransduction
Stiffened fibre-like microenvironment based on patterned equidistant micropillars directs chondrocyte hypertrophy - ScienceDirect
Substrate Compliance Directs the Osteogenic Lineages of Stem Cells from the  Human Apical Papilla via the Processes of Mechanosensing and  Mechanotransduction
Integrating physicomechanical and biological strategies for BTE: biomaterials-induced osteogenic differentiation of MSCs
Substrate Compliance Directs the Osteogenic Lineages of Stem Cells from the  Human Apical Papilla via the Processes of Mechanosensing and  Mechanotransduction
Substrate Compliance Directs the Osteogenic Lineages of Stem Cells from the Human Apical Papilla via the Processes of Mechanosensing and Mechanotransduction
Substrate Compliance Directs the Osteogenic Lineages of Stem Cells from the  Human Apical Papilla via the Processes of Mechanosensing and  Mechanotransduction
ACS Biomaterials Science & Engineering
Substrate Compliance Directs the Osteogenic Lineages of Stem Cells from the  Human Apical Papilla via the Processes of Mechanosensing and  Mechanotransduction
ACS Biomaterials Science & Engineering
Substrate Compliance Directs the Osteogenic Lineages of Stem Cells from the  Human Apical Papilla via the Processes of Mechanosensing and  Mechanotransduction
Frontiers Transforming Growth Factor-β Signaling Regulates Tooth Root Dentinogenesis by Cooperation With Wnt Signaling
Substrate Compliance Directs the Osteogenic Lineages of Stem Cells from the  Human Apical Papilla via the Processes of Mechanosensing and  Mechanotransduction
Transforming growth factor-β1-induced N-cadherin drives cell–cell communication through connexin43 in osteoblast lineage
Substrate Compliance Directs the Osteogenic Lineages of Stem Cells from the  Human Apical Papilla via the Processes of Mechanosensing and  Mechanotransduction
Substrate mechanics dictate cell-cell communication by gap junctions in stem cells from human apical papilla - ScienceDirect
Substrate Compliance Directs the Osteogenic Lineages of Stem Cells from the  Human Apical Papilla via the Processes of Mechanosensing and  Mechanotransduction
ACS Biomaterials Science & Engineering
Substrate Compliance Directs the Osteogenic Lineages of Stem Cells from the  Human Apical Papilla via the Processes of Mechanosensing and  Mechanotransduction
ACS Biomaterials Science & Engineering
Substrate Compliance Directs the Osteogenic Lineages of Stem Cells from the  Human Apical Papilla via the Processes of Mechanosensing and  Mechanotransduction
Microenvironmental Stiffness Directs Chondrogenic Lineages of Stem Cells from the Human Apical Papilla via Cooperation between ROCK and Smad3 Signaling
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