1 citations
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June 2023 in “Journal of Cellular and Molecular Medicine” This study observed that tissue-engineered skin, using VEGF165 gene-modified cells embedded in astragalus polysaccharide-containing 3D printed scaffolds, enhanced early vascularization, and collagen and hair follicle regeneration, leading to improved skin repair in nude mice with full skin defects.
February 2025 in “International Journal of Bioprinting” This study constructed a 3D-printed scaffold using sodium alginate, gelatin, and alginate lyase hydrogel, which supports hair follicle regeneration in artificial skin, suggesting a promising strategy for tissue-engineered skin with functional appendages.
August 2026 in “Materials & Design” This study developed a multifunctional 3D-printed hydrogel scaffold, SH-EGCG, that showed promising results for repairing infected diabetic wounds; in lab and animal tests, it demonstrated antibacterial activity, enhanced wound healing, and improved tissue regeneration and remodeling through various supportive mechanisms.
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.
January 2026 in “Advanced Healthcare Materials” This study developed a 3D-printed scaffold for diabetic wound repair, which showed potential in a mouse model by reducing inflammation, promoting blood vessel regeneration, enhancing skin hydration, and accelerating wound healing through nitric oxide and gallium ion release, oxidative stress modulation, and antioxidant pathway activation.