Smart nebulized ROS-responsive hydrogel microspheres loaded with UC-MSCs-derived exosomes for the treatment of acute lung injury

氧化应激 急性呼吸窘迫综合征 活性氧 医学 微球 间充质干细胞 微泡 炎症 发病机制 急性呼吸窘迫 生物相容性 呼吸系统 药理学 体外 微粒 化学 促炎细胞因子 免疫学 自愈水凝胶 体内 癌症研究 炎症反应 吸入 纳米毒理学 药物输送
作者
Chang Liu,Guoan Xiang,Yan Cao,Jianqiao Xu,Xiaoxiang Hu,Shoulong Deng,Kun Xiao,Le Xie
出处
期刊:Materials today bio [Elsevier BV]
卷期号:37: 102868-102868
标识
DOI:10.1016/j.mtbio.2026.102868
摘要

Acute Lung Injury (ALI) and Acute Respiratory Distress Syndrome (ARDS) are rapidly progressing, highly fatal clinical syndromes characterized by acute and progressive hypoxic respiratory failure. These conditions result in significant morbidity and mortality, yet no specific treatments are currently available, with management relying largely on symptomatic and supportive care. The pathogenesis of ALI/ARDS is closely linked to the excessive production of reactive oxygen species (ROS) and an uncontrolled inflammatory response, which collectively drive disease progression and tissue damage. To address this, we have developed a novel ROS-responsive hydrogel microsphere encapsulating human umbilical mesenchymal stem cell-derived exosomes, designated Exo@TK@CaAlg hydrogel microspheres. The design incorporates thioketal bonds, endowing the microspheres with both effective ROS-scavenging ability and specific responsiveness to oxidative stress. Exo@TK@CaAlg microspheres exhibit a small particle size and excellent biocompatibility in vitro and in vivo. Their potent ROS scavenging capacity positions them as a promising therapeutic approach for alleviating ALI. In preclinical studies, these microspheres have been successfully delivered via nebulization to the lungs of ALI mice, where they play a critical role in mitigating oxidative stress and inflammation. The treatment enhances pulmonary capillary barrier integrity, reduces protein exudation, restores mitochondrial function, and promotes the transition of macrophages from a pro-inflammatory to an anti-inflammatory phenotype. These collective findings highlight the potential of Exo@TK@CaAlg hydrogel microspheres as a therapeutic strategy for ALI/ARDS.
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