1 citations
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September 2023 in “Research Square (Research Square)” This study found that heart-inspired hollow hydrogel-based scaffolds enhanced regenerative capability in osteoporotic bone defects and increased cell number when using a mechanical-assisted post-bioprinting strategy.
48 citations
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April 2024 in “Nature Communications” This study demonstrated that a mechanical-assisted post-bioprinting strategy significantly increased cell numbers and enhanced regenerative capabilities in hollow hydrogel-based scaffolds for bone defect repair in vivo.
21 citations
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May 2024 in “World Journal of Stem Cells” This study found that hydrogels loaded with exosomes from bone marrow mesenchymal stem cells helped bone fracture healing by reducing inflammation, promoting blood vessel formation, and supporting bone regeneration, as confirmed in a mouse model.
3 citations
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November 2020 in “PubMed” This study observed that bone marrow mesenchymal stem cells cultured in three-dimensionally bioprinted hydrogels with higher stiffness, like 3A8G, tend to differentiate more into hair follicle cells compared to those in less stiff hydrogels, like 1A4G.
16 citations
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January 2023 in “Regenerative Biomaterials” This study examined 3D-printed scaffolds coated with polydopamine and observed that they significantly enhanced osteogenesis and angiogenesis in vitro and in a rat cranium defect model, suggesting their potential for repairing large bone defects.