Li Qing, Liu Wenbin, Hou Wen, Wu Xiaopei, Wei Wenying, Liu Jiawei, Hu Yihe, Dai Honglian
State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Biomedical Materials and Engineering Research Center of Hubei Province, Wuhan University of Technology, Wuhan, 430070, China.
Department of Orthopaedics, The Third Xiangya Hospital, Central South University, 138 Tongzipo Road, Changsha, 410008, China.
Mater Today Bio. 2022 Dec 28;18:100536. doi: 10.1016/j.mtbio.2022.100536. eCollection 2023 Feb.
The abundant neurovascular network in the periosteal fibrous layer is essential for regulating bone homeostasis and repairing bone defects. However, the majority of the current studies only focus on the structure or function, and most of them merely involve osteogenesis and angiogenesis, lacking an in-depth study of periosteal neurogenesis. In this study, a photothermal double-layer biomimetic periosteum with neurovascular coupling was proposed. The outer layer of biomimetic periosteum is a conventional electrospinning membrane to prevent soft tissue invasion, and the inner layer is an oriented nanofiber membrane to promote cell recruitment and angiogenesis. From the perspective of functional bionics, based on the whitlockite (WH) similar to bone composition, we doped Nd (the trivalent form of neodymium element) in it as the inducing element of photothermal response to prepare photothermal whitlockite (Nd@WH). The sustained release of Mg in Nd@WH can effectively promote the up-regulation of nerve growth factor (NGF) and vascular endothelial growth factor (VEGF). The release of Ca and PO ions and photothermal osteogenesis jointly promote bone regeneration. Under the combined effect of structure and function, the formation of nerves, blood vessels, and related collagens greatly simulates the microenvironment of extracellular matrix and periosteum regeneration and ultimately promotes bone regeneration. In this study, physical and chemical characterization proved that the bionic periosteum has good flexibility and operability. The cell experiment and calvarial defect model verified that PPCL/Nd@WH biomimetic periosteum had excellent bone tissue regeneration function compared with other groups. Finally, PPCL/Nd@WH provides a new idea for the design of bionic periosteum.
骨膜纤维层中丰富的神经血管网络对于调节骨稳态和修复骨缺损至关重要。然而,目前大多数研究仅关注其结构或功能,且大多仅涉及成骨和血管生成,缺乏对骨膜神经发生的深入研究。在本研究中,提出了一种具有神经血管耦合的光热双层仿生骨膜。仿生骨膜的外层是传统的静电纺丝膜,用于防止软组织侵入,内层是定向纳米纤维膜,用于促进细胞募集和血管生成。从功能仿生的角度出发,基于与骨成分相似的白磷钙矿(WH),我们在其中掺杂钕(钕元素的三价形式)作为光热响应的诱导元素,制备了光热白磷钙矿(Nd@WH)。Nd@WH中镁的持续释放可有效促进神经生长因子(NGF)和血管内皮生长因子(VEGF)的上调。钙和磷酸根离子的释放以及光热成骨共同促进骨再生。在结构和功能的联合作用下,神经、血管和相关胶原蛋白的形成极大地模拟了细胞外基质和骨膜再生的微环境,最终促进骨再生。在本研究中,物理和化学表征证明该仿生骨膜具有良好的柔韧性和可操作性。细胞实验和颅骨缺损模型验证了PPCL/Nd@WH仿生骨膜与其他组相比具有优异的骨组织再生功能。最后,PPCL/Nd@WH为仿生骨膜的设计提供了新思路。