Yin Yiran, Yao Kaitao, Zhang Qian, Huang Xiaoyu, Li Shuyang, Chen Xingtao, Li Zhong
Department of Orthopaedics, The First Affiliated Hospital of Jinan University, Guangzhou 510000, China.
Department of Orthopaedics, The Affiliated Hospital of Southwest Medical University, Luzhou 646000, China.
ACS Omega. 2025 Aug 5;10(32):36068-36081. doi: 10.1021/acsomega.5c03693. eCollection 2025 Aug 19.
Osteoporosis (OP), characterized by reduced bone mass and microstructural deterioration, poses a significant global health burden. Current therapies, such as bisphosphonates (e.g., alendronate, Aln), face challenges, including low bioavailability, systemic toxicity, and lack of targeting. Herein, we developed an erythrocyte membrane (EM)-cloaked Prussian blue (PB) nanoparticle system (EAP) coloaded with Aln to address these therapeutic bottlenecks. The hollow PB core functions as a peroxidase-mimetic catalyst, efficiently scavenging reactive oxygen species (ROS) through Fe/Fe redox cycling. Meanwhile, the EM cloaking endows the system with prolonged blood circulation and active bone targeting via integrin receptor-mediated recognition. The EAP exhibits pH-responsive drug release profiles and significant ROS elimination capacity (HO: 82.9%; ·OH: 80.2%; O·: 85.1%). The EAP can regulate osteoclast-osteoblast balance by suppressing osteoclastogenesis and promoting osteoblast mineralization. In an ovariectomized aged mouse model, EAP treatment restored bone density and trabecular microarchitecture comparable to sham controls, with histological analysis demonstrating no observable systemic toxicity. Transcription and protein expression analysis revealed downregulated NF-κB/MAPK signaling and osteoclast-specific markers after EAP treatment. This biomimetic nanodelivery system integrates ROS scavenging and targeted drug delivery, providing a potential strategy for OP therapy and other inflammatory bone disorders.
骨质疏松症(OP)以骨量减少和微结构恶化为特征,给全球健康带来了重大负担。目前的治疗方法,如双膦酸盐(如阿仑膦酸钠,Aln),面临着包括生物利用度低、全身毒性和缺乏靶向性等挑战。在此,我们开发了一种负载Aln的红细胞膜(EM)包裹的普鲁士蓝(PB)纳米颗粒系统(EAP),以解决这些治疗瓶颈。中空的PB核心作为一种过氧化物酶模拟催化剂,通过Fe/Fe氧化还原循环有效地清除活性氧(ROS)。同时,EM包裹赋予该系统延长的血液循环时间,并通过整合素受体介导的识别实现主动骨靶向。EAP表现出pH响应性药物释放曲线和显著的ROS清除能力(HO:82.9%;·OH:80.2%;O·:85.1%)。EAP可以通过抑制破骨细胞生成和促进成骨细胞矿化来调节破骨细胞-成骨细胞平衡。在去卵巢老龄小鼠模型中,EAP治疗恢复了与假手术对照组相当的骨密度和小梁微结构,组织学分析表明没有观察到全身毒性。转录和蛋白质表达分析显示,EAP治疗后NF-κB/MAPK信号通路和破骨细胞特异性标志物下调。这种仿生纳米递送系统整合了ROS清除和靶向药物递送,为OP治疗和其他炎症性骨疾病提供了一种潜在策略。