Precision-targeting and dual silencing osteoclastogenesis and inflammatory pathways for the treatment of radiation-induced bone deterioration

组织蛋白酶K 破骨细胞 骨髓 癌症研究 炎症 体内 生物相容性 抗酒石酸酸性磷酸酶 细胞生物学 化学 医学 生物 体外 免疫学 生物化学 有机化学 生物技术
作者
Guochen Luo,Yaping Ma,Wenqing Huang,Jincheng SiMa,Peng Luo,Zhiliang Lan,Maobiao Shi,Yi Zhang,Xin Wang
出处
期刊:Biomaterials advances [Elsevier BV]
卷期号:177: 214369-214369 被引量:1
标识
DOI:10.1016/j.bioadv.2025.214369
摘要

Ironizing radiation (IR)-induced bone loss remains a significant clinical challenge, largely driven by elevated osteoclastogenesis. Targeting key regulators of osteoclast differentiation and function may offer a novel therapeutic approach for preserving bone integrity under irradiated conditions. In this study, we evaluated the biocompatibility, cellular uptake, and therapeutic potential of a dual microdroplet (MD) system engineered to co-deliver inhibitors targeting nuclear factor of activated T-cells cytoplasmic 1 (NFATc1) and cathepsin K (CTSK), two key regulators of osteoclast differentiation and function. The biocompatibility and cellular uptake of dual MDs were evaluated in vitro using human bone marrow-derived mesenchymal stem cells (hBMSCs) and RAW264.7 macrophages. Functional assays, including tartrate-resistant acid phosphatase (TRAP) staining, F-actin ring analysis, and cytokine profiling, were performed in vitro. The therapeutic efficacy of dual MDs was further evaluated in vivo using a model of radiation-induced bone loss. Dual MDs demonstrated excellent biocompatibility and robust cellular uptake under both mock-IR and post-IR conditions. Treatment with dual MDs significantly inhibited macrophage fusion, suppressed TRAP activity, and disrupted F-actin ring formation, indicating impaired osteoclast maturation. In addition, dual MDs downregulated key pro-inflammatory cytokines, including G-CSF, IL-6, and TNF receptors. In vivo, dual MDs preserved bone microarchitecture and significantly reduced the expression of CTSK, NFATc1, and TNF-α in irradiated bone tissue. Our findings demonstrated that dual MDs effectively inhibit radiation-induced osteoclastogenesis and inflammation by targeting NFATc1 and CTSK. This dual-targeting approach presents a promising therapeutic strategy for mitigating bone loss in radiation-associated skeletal disorders.

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