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智能仿生骨膜来源于三价四价铈氧化物矿化蛋壳膜

Smart, Biomimetic Periosteum Created from the Cerium(III, IV) Oxide-Mineralized Eggshell Membrane.

机构信息

State Key Laboratory of Military Stomatology & National Clinical Research Center for Oral Diseases & Shaanxi Key Laboratory of Stomatology, Department of Prosthodontics, School of Stomatology, The Fourth Military Medical University, Xi'an, Shaanxi 710032, China.

Institute of Orthopaedic Surgery, Xijing Hospital, The Fourth Military Medical University, Xi'an, Shaanxi 710032, China.

出版信息

ACS Appl Mater Interfaces. 2022 Mar 30;14(12):14103-14119. doi: 10.1021/acsami.2c02079. Epub 2022 Mar 19.

Abstract

The periosteum orchestrates the microenvironment of bone regeneration, including facilitating local neuro-vascularization and regulating immune responses. To mimic the role of natural periosteum for bone repair enhancement, we adopted the principle of biomimetic mineralization to delicately inlay amorphous cerium oxide within eggshell membranes (ESMs) for the first time. Cerium from cerium oxide possesses unique ability to switch its oxidation state from cerium III to cerium IV and vice versa, which provides itself promising potential for biomedical applications. ESMs are mineralized with cerium(III, IV) oxide and examined for their biocompatibility. Apart from serving as physical barriers, periosteum-like cerium(III, IV) oxide-mineralized ESMs are biocompatible and can actively regulate immune responses and facilitate local neuro-vascularization along with early-stage bone regeneration in a murine cranial defect model. During the healing process, cerium-inlayed biomimetic periosteum can boost early osteoclastic differentiation of macrophage lineage cells, which may be the dominant mediator of the local repair microenvironment. The present work provides novel insights into expanding the definition and function of a biomimetic periosteum to boost early-stage bone repair and optimize long-term repair with robust neuro-vascularization. This new treatment strategy which employs multifunctional bone-and-periosteum-mimicking systems creates a highly concerted microenvironment to expedite bone regeneration.

摘要

骨膜调控着骨再生的微环境,包括促进局部血管神经化和调节免疫反应。为了模拟天然骨膜在增强骨修复中的作用,我们首次采用仿生矿化原理,将非晶态氧化铈精细镶嵌在蛋壳膜(ESM)中。氧化铈中的铈具有独特的能力,可以在铈 III 和铈 IV 之间切换氧化态,这为其在生物医学中的应用提供了广阔的前景。用氧化铈(III、IV)对 ESM 进行矿化,并对其生物相容性进行了研究。除了作为物理屏障外,类骨膜的氧化铈(III、IV)矿化 ESM 具有生物相容性,可在早期骨再生过程中,积极调节免疫反应并促进局部血管神经化,这在小鼠颅缺损模型中得到了验证。在愈合过程中,镶嵌铈的仿生类骨膜可以促进巨噬细胞系细胞的早期破骨细胞分化,这可能是局部修复微环境的主要介导者。本研究为扩展仿生骨膜的定义和功能以促进早期骨修复并优化具有强大血管神经化的长期修复提供了新的见解。这种新的治疗策略采用多功能骨和骨膜模拟系统,创造了一个高度协调的微环境,以加速骨再生。

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