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钛表面的微纳仿生涂层可实现骨/血管生成和骨免疫调节,以达到先进的骨整合。

A micro/nano-biomimetic coating on titanium orchestrates osteo/angio-genesis and osteoimmunomodulation for advanced osseointegration.

机构信息

Key Laboratory for Ultrafine Materials of Ministry of Education, East China University of Science and Technology, Shanghai, 200237, China; Laboratory of Biomaterial Surfaces & Interfaces, Institute of New Carbon Materials, College of Materials Science and Engineering, Taiyuan University of Technology, Taiyuan, China; School of Mechanical, Medical and Process Engineering, Queensland University of Technology, Brisbane, Australia; Engineering Research Center for Biomedical Materials of Ministry of Education, East China University of Science and Technology, Shanghai, 200237, China; Australia-China Centre for Tissue Engineering and Regenerative Medicine, Queensland University of Technology, Brisbane, Australia; Frontiers Science Center for Materiobiology and Dynamic Chemistry, East China University of Science and Technology, Shanghai, 200237, China.

State Key Laboratory of Proteomics, Beijing Proteome Research Center, National Center for Protein Sciences (Beijing), Institute of Lifeomics, Beijing, 102206, China.

出版信息

Biomaterials. 2021 Nov;278:121162. doi: 10.1016/j.biomaterials.2021.121162. Epub 2021 Oct 4.

Abstract

Osseointegration is a sophisticated bone and implant healing process comprising of initial hematoma formation, immediate osteoimmunomodulation, angiogenesis, and osteogenesis. To fulfill rapid and satisfying osseointegration, this study developed a biomimetic implant coating that could confer the intraosseous implants a systematical regulation of the participatory processes. Herein, we shaped dissimilar nano-scale (NS) to form highly biomimetic structures of natural extracellular matrix (ECM) of the host bone and bone healing hematoma with micro/nano-scale (MNS) titania fiber-like network on the surface of titanium (Ti) implants. In vitro experiments revealed that the MNS not only facilitated osteogenic and angiogenic differentiation of bone marrow stromal cells (BMSCs) and endothelial cells, respectively, but also suppressed M1 macrophages (MΦs), whereas, stimulated pro-healing M2 phenotype. Notably, BMSCs on MNS surfaces enabled a significant immunomodulatory effect on MΦs resulting in the downregulation of inflammation-related cell signaling pathways. The favorable osteoimmune microenvironment manipulated by MNS further facilitated osteo-/angio-genesis via the crosstalk of multi-signaling pathways. In vivo evaluation mirrored the aforementioned results, and depicted that MNS induced ameliorative osseointegration when compared with the NS as well as the pristine Ti implant. The study demonstrated the modulatory effect of the multifaceted biomimetic structure on spatiotemporal regulation of the participatory processes during osseointegration.

摘要

骨整合是一个复杂的骨骼和植入物愈合过程,包括初始血肿形成、即刻骨免疫调节、血管生成和成骨。为了实现快速和满意的骨整合,本研究开发了一种仿生植入物涂层,能够对骨内植入物进行系统的参与过程调节。在这里,我们通过形成不同的纳米级(NS)来构建高度仿生的宿主骨天然细胞外基质(ECM)结构和骨愈合血肿结构,同时在钛(Ti)植入物表面形成微/纳米级(MNS)的二氧化钛纤维状网络。体外实验表明,MNS 不仅促进了骨髓基质细胞(BMSCs)和成血管细胞的成骨和成血管分化,而且还抑制了 M1 巨噬细胞(MΦs),同时刺激了促愈合的 M2 表型。值得注意的是,MNS 表面上的 BMSCs 对 MΦs 产生了显著的免疫调节作用,导致炎症相关细胞信号通路的下调。MNS 操纵的有利的骨免疫微环境通过多信号通路的串扰进一步促进了骨/血管生成。体内评价反映了上述结果,并表明与 NS 以及原始 Ti 植入物相比,MNS 诱导了改善的骨整合。该研究表明,这种多方面的仿生结构对骨整合过程中参与过程的时空调节具有调节作用。

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