通过磁化金纳米颗粒促进骨质疏松症的成骨。

IF 9.6 Q1 ENGINEERING, BIOMEDICAL
Biomaterials research Pub Date : 2025-09-24 eCollection Date: 2025-01-01 DOI:10.34133/bmr.0260
Yang Liu, Yan Li, Xue Bai, Yu Gu
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引用次数: 0

摘要

骨质疏松症(Osteoporosis, OP)是世界范围内最常见的骨代谢紊乱,严重影响患者的生活质量并造成巨大的医疗负担。然而,目前对OP的临床治疗不能提供令人满意的治疗结果,特别是在存在复杂炎症的情况下。无创物理治疗和生物纳米技术的结合在调节细胞功能和优化骨微环境方面显示出巨大的前景。在这项研究中,我们证明了电磁化金纳米颗粒(AuNPs)在细胞、血管和主要器官水平上具有良好的生物相容性。这些电磁AuNPs显著增强了成骨细胞的生物学行为,包括增殖、迁移、集落形成和成骨分化。值得注意的是,RNA测序分析显示,电磁磁化的AuNPs显著激活线粒体氧化磷酸化途径,同时抑制白细胞介素-17促炎信号通路。此外,电磁磁化的AuNPs稳定了线粒体膜电位,促进了三磷酸腺苷(ATP)的产生,同时减少了细胞凋亡和氧化应激,从而促进了炎症条件下的成骨分化。此外,在炎症诱导的OP小鼠模型中,电磁AuNPs有效地恢复了骨量并改善了小梁结构。总的来说,我们的研究结果提供了一个概念证明,即电磁AuNPs通过促进成骨分化和优化骨微环境来促进成骨,突出了它们作为OP治疗策略的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing Osteogenesis in Osteoporosis via Electromagnetized Gold Nanoparticles.

Osteoporosis (OP) is the most common bone metabolic disorder worldwide, markedly compromising patients' quality of life and imposing a substantial healthcare burden. However, current clinical treatments for OP are not able to provide satisfactory therapeutic outcomes, particularly in the presence of complex inflammatory conditions. The integration of noninvasive physical therapy and bionanotechnology has shown great promise in modulating cellular functions and optimizing the bone microenvironment. In this study, we demonstrated that electromagnetized gold nanoparticles (AuNPs) exhibited excellent biocompatibility at the cellular, vascular, and major organ levels. These electromagnetized AuNPs significantly enhanced the biological behaviors of osteoblasts, including proliferation, migration, colony formation, and osteogenic differentiation. Remarkably, RNA sequencing analysis revealed that electromagnetized AuNPs significantly activated the mitochondrial oxidative phosphorylation pathway while suppressing the interleukin-17 pro-inflammatory signaling pathway. Additionally, electromagnetized AuNPs stabilized mitochondrial membrane potential and boosted adenosine triphosphate (ATP) production while reducing cell apoptosis and oxidative stress, thereby promoting osteogenic differentiation under inflammatory conditions. Furthermore, in a mouse model of inflammation-induced OP, the electromagnetized AuNPs effectively restored bone mass and improved trabecular architecture. Collectively, our findings provide a proof-of-concept that electromagnetized AuNPs enhance osteogenesis by promoting osteogenic differentiation and optimizing the bone microenvironment, highlighting their potential as a promising therapeutic strategy for OP.

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