Related Experiment Video
Updated: Aug 20, 2026

Distinctive Capillary Action by Micro-channels in Bone-like Templates can Enhance Recruitment of Cells for Restoration of Large Bony Defect
Published on: September 11, 2015
Biomimetic Self-Adhesive Artificial Periosteum with Micro/Nanofibrous Structure Accelerates Bone Reconstruction via
Xuemei Sun1, Junwei Xu1,2, Jingxi Wang3
1Key Laboratory of Biomechanics and Mechanobiology (Beihang University), Ministry of Education, Key Laboratory of Innovation and Transformation of Advanced Medical Devices, Ministry of Industry and Information Technology, National Medical Innovation Platform for Industry-Education Integration in Advanced Medical Devices (Interdiscipline of Medicine and Engineering), School of Biological Science and Medical Engineering, Beihang University, Beijing100191, China.
None:
Critical-sized bone defects remain a major clinical challenge, and the periosteum, comprising a highly vascularized outer fibrous layer and an osteogenic inner layer, is crucial for bone repair. Herein, a biomimetic bilayer artificial periosteum (CP-HP) was developed, consisting of a hierarchically aligned micro/nanofibrous polycaprolactone-chitosan (PCL-CS) outer layer and an adhesive hydroxyapatite-polydopamine-polyacrylamide (HA-PDA-PAM) hydrogel inner layer. The fibrous outer layer provided aligned topographical cues and a mechanical barrier, which promoted angiogenesis, modulated the immune microenvironment, and prevented soft tissue invasion, while the hydrogel inner layer offered strong tissue adhesion and a mineralized microenvironment that stabilized the implant and facilitated osteogenesis. In vitro results demonstrated that the outer fibrous layer significantly enhanced adhesion, spreading, proliferation, and migration of HUVECs, accompanied by upregulated expression of integrin β1 and vinculin, indicating pronounced pro-angiogenic potential. Meanwhile, the bilayer periosteum promoted proliferation and osteogenic differentiation of MC3T3-E1 cells, as evidenced by increased ALP activity and elevated expression of osteogenic markers (ALP, Runx2, Col-I, and OCN). In vivo subcutaneous and cranial defect implantation further confirmed enhanced angiogenesis, improved immune regulation, and robust bone regeneration. Overall, CP-HP effectively mimicked the native periosteum's dual-layer regenerative mechanism and synergistically promoted angiogenesis and osteogenesis, providing a promising strategy for repairing critical-sized bone defects.
More Related Videos
09:34Visualizing Angiogenesis by Multiphoton Microscopy In Vivo in Genetically Modified 3D-PLGA/nHAp Scaffold for Calvarial Critical Bone Defect Repair
Published on: September 7, 2017
09:49Decellularized Apple-Derived Scaffolds for Bone Tissue Engineering In Vitro and In Vivo
Published on: February 23, 2024