Department of Orthopaedics, The Second Affiliated Hospital, Jiangxi Medical College, Nanchang University, Nanchang, 330088, Jiangxi, P. R. China.
School of Chemistry and Chemical Engineering, Nanchang University, Nanchang, 330088, Jiangxi, P. R. China.
J Nanobiotechnology. 2024 Jun 5;22(1):314. doi: 10.1186/s12951-024-02581-7.
Osteoporosis is the most common bone metabolic disease that affects the health of middle-aged and elderly people, which is hallmarked by imbalanced bone remodeling and a deteriorating immune microenvironment. Magnesium and calcium are pivotal matrix components that participate in the bone formation process, especially in the immune microenvironment regulation and bone remodeling stages. Nevertheless, how to potently deliver magnesium and calcium to bone tissue remains a challenge. Here, we have constructed a multifunctional nanoplatform composed of calcium-based upconversion nanoparticles and magnesium organic frameworks (CM-NH-PAA-Ald, denoted as CMPA), which features bone-targeting and pH-responsive properties, effectively regulating the inflammatory microenvironment and promoting the coordination of osteogenic functions for treating osteoporosis. The nanoplatform can efficaciously target bone tissue and gradually degrade in response to the acidic microenvironment of osteoporosis to release magnesium and calcium ions. This study validates that CMPA possessing favorable biocompatibility can suppress inflammation and facilitate osteogenesis to treat osteoporosis. Importantly, high-throughput sequencing results demonstrate that the nanoplatform exerts a good inflammatory regulation effect through inhibition of the nuclear factor kappa-B signaling pathway, thereby normalizing the osteoporotic microenvironment. This collaborative therapeutic strategy that focuses on improving bone microenvironment and promoting osteogenesis provides new insight for the treatment of metabolic diseases such as osteoporosis.
骨质疏松症是一种常见的骨骼代谢疾病,影响中老年人的健康,其特征是骨重建失衡和免疫微环境恶化。镁和钙是参与骨形成过程的重要基质成分,特别是在免疫微环境调节和骨重塑阶段。然而,如何有效地将镁和钙递送到骨组织仍然是一个挑战。在这里,我们构建了一种由钙基上转换纳米粒子和镁有机框架组成的多功能纳米平台(CM-NH-PAA-Ald,记为 CMPA),具有骨靶向和 pH 响应特性,可有效调节炎症微环境并促进成骨功能的协调,用于治疗骨质疏松症。该纳米平台可以有效地靶向骨组织,并在响应骨质疏松症酸性微环境时逐渐降解,从而释放镁和钙离子。这项研究证实了具有良好生物相容性的 CMPA 可以抑制炎症并促进成骨作用来治疗骨质疏松症。重要的是,高通量测序结果表明,该纳米平台通过抑制核因子 kappa-B 信号通路发挥良好的炎症调节作用,从而使骨质疏松症微环境正常化。这种专注于改善骨骼微环境和促进成骨作用的协同治疗策略为治疗骨质疏松等代谢疾病提供了新的思路。