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Rapid Isolation of BMPR-IB+ Adipose-Derived Stromal Cells for Use in a Calvarial Defect Healing Model
Published on: February 24, 2017
Biomimetic Mineralized Decellularized Adipose Tissue Accelerates Bone Repair by Immunomodulation and Dual
Tianlong Wang1,2, Zhiqing Liu1,2, Xinhui Wu1,2
1Center for Orthopaedic Science and Translational Medicine, Department of Orthopedics, Shanghai Tenth People's Hospital, School of Medicine, Tongji University, Shanghai, 200072, China.
Abstract:
Biomimetic mineralization as a promising method offers a bottom-up strategy for creating new organic-inorganic hybrid materials for treating bone defects. However, it is insufficient for bone regeneration, a complex biological procedure involving an interaction between osteogenesis and microenvironment. Herein, a biomimetic mineralized scaffold derived from decellularized adipose tissue modified with polyphenol tannic acid (TA@mDAT) is developed, drawing inspiration from the regulation of the microenvironment and the biomimetic strategy. Besides its enhanced mechanical properties by mineralization, the shape-memory effect of the biomimetic mineralized decellularized adipose tissue (mDAT) is also improved, due to the crosslinking structure between decellularized adipose tissue (DAT) and tannic acid (TA). Besides, the TA@mDAT scaffold exhibits excellent biocompatibility and immunomodulation effect, high efficacy in guiding bone regeneration via intramembranous and endochondral ossification, and enhanced H-type vessel formation. Furthermore, the enhanced expression of Dll4 and Hey1 involving the Notch1 signaling pathway is detected in the regenerated bone, indicating that the Dll4-Notch1 signaling pathway may play an important role in bone regeneration. Thus, this work provides a promising method for bone regeneration by triggering periosteal osteogenesis and H-type vessel formation and revealing a potential mechanism in the osteogenic process.

