ArticleBioactive materials2025
A deformable SIS/HA composite hydrogel coaxial scaffold promotes alveolar bone regeneration after tooth extraction.
Article in Bioactive materials, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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Who cites it
8 citing papers in PubMed.
- L-leucine-incorporated 3D-printed SilMA hydrogel scaffolds promote calvarial defect repair with PLOD2-associated collagen remodeling.Materials today. Bio · 2026Article
- -30°C-operable bioadhesive hydrogel sensors for embryonic-like skin regeneration and real-time wound monitoring.Bioactive materials · 2026Article
- Mechanobiology of orofacial tissues: principles, mechanisms, and therapeutic applications.International journal of oral science · 2026Review
- Programmed regulation of microenvironment remodeling and bone regeneration for bone repair by coaxial hydrogel scaffold with ultrasound-activated drug delivery.Materials today. Bio · 2026Article
- Robust adhesive, antibacterial, pro-angiogenic and osteogenic bone adhesives with moderate degradability facilitating bone regeneration.Bioactive materials · 2026Article
- Advances in Composite Bioactive Scaffolds for Alveolar Bone Repair: Implications for Oral Surgery.Brazilian dental journal · 2026Review
- Stem cell-derived extracellular vesicles -mediated bone regeneration: mechanisms, targeted delivery, and clinical perspectives in promoting angiogenesis.Frontiers in bioengineering and biotechnology · 2026Review
- Exosome-Based Therapeutics for Musculoskeletal Disorders: Advances in Engineering, Targeting, and Biomaterial Integration.ACS nano · 2025Review
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Authors and funding
11 authors.
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Abstract
After tooth extraction, alveolar bone absorbs unevenly, leading to soft tissue collapse, which hinders full regeneration. Bone loss makes it harder to do dental implants and repairs. Inspired by the biological architecture of bone, a deformable SIS/HA (Small intestinal submucosa/Hydroxyapatite) composite hydrogel coaxial scaffold was designed to maintain bone volume in the socket. The SIS/HA scaffold containing GL13K as the outer layer, mimicking compact bone, while SIS hydrogel loaded with bone marrow mesenchymal stem cells-derived exosomes (BMSCs-Exos) was utilized as the inner core of the scaffolds, which are like soft tissue in the skeleton. This coaxial scaffold exhibited a modulus of elasticity of 0.82 MPa, enabling it to adaptively fill extraction sockets and maintain an osteogenic space. Concurrently, the inner layer of this composite scaffold, enriched with BMSCs-Exos, promoted the proliferation and migration of human umbilical vein endothelial cells (HUVECs) and BMSCs into the scaffold interior (≈3-fold to the control), up-regulated the expression of genes related to osteogenesis (BMP2, ALP, RUNX2, and OPN) and angiogenesis (HIF-1α and VEGF). This induced new blood vessels and bone growth within the scaffold, addressing the issue of low bone formation rates at the center of defects. GL13K was released by approximately 40.87 ± 4.37 % within the first three days, exerting a localized antibacterial effect and further promoting vascularization and new bone formation in peripheral regions. This design aims to achieve an all-around and efficient bone restoration effect in the extraction socket using coaxial scaffolds through a dual internal and external mechanism.
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