8 research outputs found

    Pluronic F-127 hydrogel as a promising scaffold for encapsulation of dental-derived mesenchymal stem cells

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    Dental-derived mesenchymal stem cells (MSCs) provide an advantageous therapeutic option for tissue engineering due to their high accessibility and bioavailability. However, delivering MSCs to defect sites while maintaining a high MSC survival rate is still a critical challenge in MSC-mediated tissue regeneration. Here, we tested the osteogenic and adipogenic differentiation capacity of dental pulp stem cells (DPSCs) in a thermoreversible Pluronic F127 hydrogel scaffold encapsulation system in vitro. DPSCs were encapsulated in Pluronic(®) F-127 hydrogel and stem cell viability, proliferation and differentiation into adipogenic and osteogenic tissues were evaluated. The degradation profile and swelling kinetics of the hydrogel were also analyzed. Our results confirmed that Pluronic F-127 is a promising and non-toxic scaffold for encapsulation of DPSCs as well as control human bone marrow MSCs (hBMMSCs), yielding high stem cell viability and proliferation. Moreover, after 2 weeks of differentiation in vitro, DPSCs as well as hBMMSCs exhibited high levels of mRNA expression for osteogenic and adipogenic gene markers via PCR analysis. Our histochemical staining further confirmed the ability of Pluronic F-127 to direct the differentiation of these stem cells into osteogenic and adipogenic tissues. Furthermore, our results revealed that Pluronic F-127 has a dense tubular and reticular network morphology, which contributes to its high permeability and solubility, consistent with its high degradability in the tested conditions. Altogether, our findings demonstrate that Pluronic F-127 is a promising scaffold for encapsulation of DPSCs and can be considered for cell delivery purposes in tissue engineering

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    Hydrogels for directed stem cell differentiation and tissue repair

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    Thanks to their tunable physical and biochemical properties, hydrogels are an attractive tool for tissue engineering applications. This review highlights the design parameters that have been shown to influence stem cell behaviour when cultured on or within hydrogels and presents the various types of materials and crosslinking methods currently used to produce hydrogels suitable for stem cell-based tissue engineering. We also focus on new generations of hydrogels with spatially and dynamically controllable physical and biochemical properties, which open up new perspectives in the study of stem cell behaviour and in the development of therapeutic solutions in regenerative medicine. In line with the current need for more tunable and dynamic properties, polyrotaxane hydrogels can be used to create spatially flexible structures at the molecular scale and are therefore emerging as a new player in the field of tissue engineering
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