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Functionalized chitosan hydrogel promotes osseointegration at the interface of3D printed titanium alloy scaffolds

骨整合 壳聚糖 生物相容性 合金 再生(生物学) 钛合金 材料科学 骨愈合 背景(考古学) 组织工程 皮质骨 纳米技术 化学 生物医学工程 复合材料 冶金 细胞生物学 解剖 植入 外科 医学 古生物学 生物 生物化学
作者
Chenyi Zhu,Yudong Jia,Yanfeng Tang,Chaowei Guo,Jianing Xi,Chaojun Sun,Hongjun Li,Wenlong Wang,Yuankun Zhai,Ying‐Jie Zhu,Youwen Liu
出处
期刊:International Journal of Biological Macromolecules [Elsevier]
卷期号:266: 131169-131169 被引量:2
标识
DOI:10.1016/j.ijbiomac.2024.131169
摘要

Autogenous bone transplantation is a prevalent clinical method for addressing bone defects. However, the limited availability of donor bone and the morbidity associated with bone harvesting have propelled the search for suitable bone substitutes. Bio-inspired scaffolds, particularly those fabricated using electron beam melting (EBM) deposition technology, have emerged as a significant advancement in this field. These 3D-printed titanium alloy scaffolds are celebrated for their outstanding biocompatibility and favorable elastic modulus. Thermosensitive chitosan hydrogel, which transitions from liquid to solid at body temperature, serves as a popular carrier in bone tissue engineering. Icariin (ICA), known for its efficacy in promoting osteoblast differentiation from bone marrow mesenchymal stem cells (BMSCs), plays a crucial role in this context. We developed a system combining a 3D-printed titanium alloy with a thermosensitive chitosan hydrogel, capable of local bone regeneration and integration through ICA delivery. Our in vitro findings reveal that this system can gradually release ICA, demonstrating excellent biocompatibility while fostering BMSC proliferation and osteogenic differentiation. Immunohistochemistry and Micro-CT analyses further confirm the effectiveness of the system in accelerating in vivo bone regeneration and enhancing osseointegration. This composite system lays a significant theoretical foundation for advancing local bone regeneration and integration.
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