Rational Design of Engineered Bionic Periosteum for Dynamic Immunoinduction, Smart Bactericidal, and Efficient Bone Regeneration

Author:

Yu Lei1,Qiao Yusen1,Ge Gaoran1,Chen Miao1,Yang Peng1,Li Wenhao1,Qin Yi12,Xia Wenyu1,Zhu Chen2,Pan Guoqing3,Zhang Po4,Yang Huilin1,Wang Chen5,Bai Jiaxiang126,Geng Dechun1

Affiliation:

1. Department of Orthopedics Orthopedic Institute, Medical College The First Affiliated Hospital of Soochow University Soochow University Suzhou Jiangsu 215006 China

2. Department of Orthopedics Centre for Leading Medicine and Advanced Technologies of IHM The First Affiliated Hospital of USTC Division of Life Sciences and Medicine University of Science and Technology of China Hefei Anhui 230022 China

3. Institute for Advanced Materials School of Materials Science and Engineering Jiangsu University Zhenjiang Jiangsu 212013 China

4. Department of Orthopedics The Affiliated Sihong First People's Hospital of Xuzhou Medical University Xuzhou Medical University Suqian Jiangsu 223999 China

5. Department of Spinal Orthopedics Changzheng Hospital Naval Medical University Shanghai 201209 China

6. National Center for Translational Medicine (Shanghai) SHU Branch Shanghai University Shanghai 200444 China

Abstract

AbstractBone defects arising from trauma and tumors present a potential risk of infection and compromise host immune function. Within a dysfunctional microenvironment, the uncontrolled breeding of bacteria and persistent chronic inflammation exacerbate bone loss, impeding bone regeneration and repair. Macrophages function as specialized phagocytes within the immune microenvironment and the orchestrated role of distinct phenotypes during regeneration has attracted significant attention. The M1 phenotype exhibits antimicrobial activities to eliminate bacterial threats, while the M2 phenotype secretes anti‐inflammatory mediators to fine‐tune the immune microenvironment. Here, a biphasic delivery system consisting of a photothermal agent (graphene oxide, GO) coated and an immune modulator (urolithin A, UA) encapsulated in coaxial electrospun nanofibers with a dynamic regulation function of macrophage behavior is designed. It is observed that the GO coating exhibited remarkable photothermal performance within the near‐infrared window, affecting the phagocytic activity of macrophage subsets in an integrin‐RhoA‐ROCK1 dependent manner. The sustained release of UA from the core layer induced a phenotypic switch by downregulating TNF signaling and upregulating TGF signaling. This system also demonstrated a promotion of bone regeneration in vivo. Overall, this strategy achieved sequential regulation of macrophage phenotypes, effectively preventing infection and fostering bone tissue regeneration.

Funder

China Postdoctoral Science Foundation

National Natural Science Foundation of China

Natural Science Foundation of Jiangsu Province

Priority Academic Program Development of Jiangsu Higher Education Institutions

Publisher

Wiley

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