Macrophage Intracellular “Calcium Oscillations” Triggered Through In Situ Mineralization Regulate Bone Immunity to Facilitate Bone Repair

Author:

Zhao Jinhui1,Zhang Kesheng2,Wang Lingtian1,Zhu Ziyang1,Jiang Dajun1,Zuo Yangbo34,Yang Jingzhou234,Jia Weitao1ORCID

Affiliation:

1. Department of Orthopedic Surgery Shanghai Sixth People's Hospital Affiliated to Shanghai Jiao Tong University School of Medicine Shanghai 200233 China

2. School of Mechanical & Automobile Engineering Qingdao University of Technology Qingdao Shandong 266520 P. R. China

3. Center of Biomedical Materials 3D Printing National Engineering Laboratory for Polymer Complex Structure Additive Manufacturing Baoding Hebei 072150 P. R. China

4. Shenzhen Dazhou Medical Technology Co, Ltd. Shenzhen Guangdong 518110 P. R. China

Abstract

AbstractBioceramics are vital for treating bone defects, and bioactive glasses (exemplified by 45S5) and calcium phosphate ceramics (CaPs, exemplified by tricalcium phosphate [β‐TCP]) are extensively explored. β‐TCP exhibits superior biocompatibility, degradability, and osteoconductive properties than 45S5; however, it lacks bioactivity, such as mineralization capability. To harness the synergies of both, four 3D printing bioceramic scaffolds: 45S5, 70% 45S5 + 30% TCP, 30% 45S5 + 70% TCP, and TCP, are manufactured. Furthermore, the investigation elucidates the correlation between their in situ mineralization capabilities and the intracellular calcium oscillations within macrophages and determines how they impact macrophage phenotypic transitions. Notably, during bioceramic degradation, there is an initial rise followed by a decline in calcium ion concentration, which results in intracellular calcium ion oscillations within macrophages. In the 70% 45S5 + 30% TCP group, early release of calcium ions promotes M1 macrophage polarization. Subsequently, rapid in situ mineralization causes a decrease in extracellular calcium ions, thus accelerating the transition of M1 to M2 macrophages and facilitating bone repair. The present study reveals a novel mechanism through which bioceramics modulate macrophage polarization, offers new insights into the initial foreign body response to bioceramics and presents a perspective on expeditious progression toward tissue repair.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Publisher

Wiley

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