高氧
氧化应激
微泡
活性氧
细胞生物学
支气管肺发育不良
化学
GPX4
下调和上调
信号转导
细胞
细胞内
程序性细胞死亡
癌症研究
抗氧化剂
体内
细胞信号
乙酰半胱氨酸
氧化磷酸化
细胞损伤
细胞外
体外
细胞生长
作者
Yuhan Pu,Mingyue Lv,Ru Yan,Heng Zhang,Lihui Yu,Weilai Jin,Le Zhang,Zhiwei YU,Yahui Zhou
出处
期刊:Antioxidants
[Multidisciplinary Digital Publishing Institute]
日期:2026-03-05
卷期号:15 (3): 326-326
标识
DOI:10.3390/antiox15030326
摘要
BACKGROUND: Bronchopulmonary dysplasia (BPD) is a common lung disease in premature infants. Hyperoxia-induced oxidative stress and ferroptosis are key pathological mechanisms leading to alveolar epithelial (AT) cell injury and impaired alveolar development. M2 macrophage-derived exosomes (M2-Exo), as intercellular communication carriers, have potential protective effects in regulating oxidative stress-related diseases, but the molecular mechanism by which they exert effects by regulating ferroptosis in BPD remains unclear. OBJECTIVE: To explore the protective effect of M2-Exo on hyperoxia or inflammation-induced BPD models and clarify its antioxidant mechanism. METHOD: In vitro AT cell injury models and in vivo BPD models were constructed by hyperoxia or LPS induction. M2-Exo were isolated, identified, and used to intervene in models. Oxidative stress and ferroptosis-related indicators (ROS, MDA, iron accumulation, GPX4), AT cell functional markers (AQP5, SPC), and ZAKα-p38 pathway activation contents were detected. ZAKα overexpression was used to verify pathway dependence. RESULTS: M2-Exo intervention significantly enhanced AT cell viability, upregulated the expression of AQP5 and SPC, and reversed alveolar simplification. Concurrently, it effectively suppressed hyperoxia or LPS-induced oxidative stress and ferroptosis, as evidenced by reduced contents of ROS and MDA, diminished iron accumulation, and GPX4 expression. Mechanistically, M2-Exo significantly inhibited the activation of the ZAKα-p38 pathway, and ZAKα overexpression could antagonize the antioxidant, anti-ferroptotic, and AT cell protective effects of M2-Exo. CONCLUSIONS: M2-Exo alleviate AT cell oxidative stress and ferroptosis by inhibiting the ZAKα-p38 pathway, thereby improving hyperoxia or inflammation-induced BPD and providing a new strategy and molecular target for the antioxidant treatment of BPD.
科研通智能强力驱动
Strongly Powered by AbleSci AI