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Bioprinted Constructs that Mimic the Ossification Center Microenvironment for Targeted Innervation in Bone Regeneration

细胞生物学 骨化 降钙素基因相关肽 再生(生物学) 神经生长因子 间充质干细胞 间质细胞 材料科学 解剖 生物 内科学 医学 癌症研究 受体 神经肽
作者
Wentao Li,Weiqiang Miao,Yihao Liu,Tianchang Wang,Yuxin Zhang,Wenhao Wang,Dezhi Lu,Xianhao Zhou,Xin Jiao,Xinlin Jia,Yixuan Lin,Yuchen Li,Hongtao He,Yuanqing Mao,Zhenjiang Ma,Tao Li,Jinwu Wang
出处
期刊:Advanced Functional Materials [Wiley]
卷期号:32 (9) 被引量:63
标识
DOI:10.1002/adfm.202109871
摘要

Abstract Although great progress has been made in engineered bone tissues, delayed or ineffective bone regeneration remains an issue due to the lack of neural network reconstruction in their design. Therefore, an engineered bone tissue construct that mimics the ossification center microenvironment to promote innervation is proposed. Based on this, the NGF@Lap constructs are constructed through bioprinting technology, which can release nerve growth factor (NGF) for a long time and simulate the ossification center's microenvironment with high expression NGF. In vitro, NGF@Lap‐GA can promote axonal extension. Meanwhile, the NGF and Laponite from the constructs can respectively promote the expression and secretion of calcitonin gene‐related peptide (CGRP) in sensory neurons. Further, the constructs show a CGRP‐dependent osteogenic and inhibition of adipogenesis, which is mainly regulated by AMP‐activated protein kinase‐peroxisome proliferator activated receptor pathway. In vivo, the constructs increased neurovascular network density in the tissue surrounding the implant, promoted bone marrow mesenchymal stem cells osteogenic differentiation, and effectively improved bone regeneration in the cranial defect model. In conclusion, the novel tissue‐engineered bone simulates the ossification center microenvironment, promotes innervation, and has promising potential for future application in bone regeneration.
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