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通过短纤维-微球支架调节巨噬细胞葡萄糖代谢稳态,利用线粒体变阻器促进骨修复

Regulating macrophage glucose metabolism homeostasis via mitochondrial rheostats by short fiber-microsphere scaffolds for bone repair.

作者信息

Zhuang Pengzhen, Chen Yu, Zhang Yu, Yang Wu, Zuo Guilai, Rosenholm Jessica M, Wang Zhongmin, Wang Juan, Cui Wenguo, Zhang Hongbo

机构信息

Department of Radiology, Ruijin Hospital Lu Wan Branch, Shanghai Jiaotong University School of Medicine, Shanghai, 200025, PR China.

Department of Orthopaedics, Shanghai Key Laboratory for Prevention and Treatment of Bone and Joint Diseases, Shanghai Institute of Traumatology and Orthopaedics, Ruijin Hospital, Shanghai Jiao Tong University School of Medicine, 197 Ruijin 2nd Road, Shanghai 200025, P. R. China.

出版信息

Bioact Mater. 2025 Mar 15;49:399-417. doi: 10.1016/j.bioactmat.2025.03.008. eCollection 2025 Jul.

Abstract

The alterations in glucose metabolism flux induced by mitochondrial function changes are crucial for regulating bone immune homeostasis. The restoration of mitochondrial homeostasis, serving as a pivotal rheostat for balancing glucose metabolism in immune cells, can effectively mitigate inflammation and initiate osteogenesis. Herein, an ion-activated mitochondrial rheostat fiber-microsphere polymerization system (FM@CeZnHA) was innovatively constructed. Physical-chemical and molecular biological methods confirmed that CeZnHA, characterized by a rapid degradation rate, releases Ce/Zn ions that restore mitochondrial metabolic homeostasis and M1/M2 balance of macrophages through swift redox reactions. This process reduces the glycolysis level of macrophages by down-regulating the NF-κB p65 signaling pathway, enhances their mitochondrial metabolic dependence, alleviates excessive early inflammatory responses, and promptly initiates osteogenesis. The FM network provided a stable platform for macrophage glycolytic transformation and simulated extracellular matrix microenvironment, continuously restoring mitochondrial homeostasis and accelerating ossification center formation through the release of metal ions from the internal CeZnHA for efficient bone immune cascade reactions. This strategy of bone immunity mediated by the restoration of macrophage mitochondrial metabolic function and glucose metabolic flux homeostasis opens up a new approach to treating bone defects.

摘要

线粒体功能变化所诱导的葡萄糖代谢通量改变对于调节骨免疫稳态至关重要。线粒体稳态的恢复作为免疫细胞中平衡葡萄糖代谢的关键变阻器,可有效减轻炎症并启动成骨作用。在此,创新性地构建了一种离子激活的线粒体变阻器纤维-微球聚合系统(FM@CeZnHA)。物理化学和分子生物学方法证实,具有快速降解速率的CeZnHA通过快速氧化还原反应释放Ce/Zn离子,从而恢复线粒体代谢稳态以及巨噬细胞的M1/M2平衡。该过程通过下调NF-κB p65信号通路降低巨噬细胞的糖酵解水平,增强其对线粒体代谢的依赖性,减轻过度的早期炎症反应,并迅速启动成骨作用。FM网络为巨噬细胞糖酵解转化和模拟细胞外基质微环境提供了一个稳定平台,通过内部CeZnHA释放金属离子持续恢复线粒体稳态并加速骨化中心形成,以实现高效的骨免疫级联反应。这种通过恢复巨噬细胞线粒体代谢功能和葡萄糖代谢通量稳态介导的骨免疫策略为治疗骨缺损开辟了一条新途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2ef3/11937614/e2be05deb38d/ga1.jpg

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