氧化应激
透明质酸
活性氧
药理学
神经保护
医学
炎症
小胶质细胞
冲程(发动机)
一氧化氮
材料科学
缺血
血脑屏障
多发性硬化
再灌注治疗
NADPH氧化酶
脑血流
巨噬细胞极化
促炎细胞因子
氧化铈
麻醉
氧化磷酸化
脑梗塞
再灌注损伤
抗氧化剂
作者
Yu Zhao,Wei Zhang,Yue Wang,Xiuyue Fu,Yue Chen,Yang Liu,Li Yang,Yunbing Wang
标识
DOI:10.1021/acsami.6c03227
摘要
Stroke is a leading global cause of disability and death, with ischemic stroke posing a particularly severe threat. Despite reperfusion therapy, poor outcomes often persist due to oxidative stress, neuroinflammation, and nerve impairment. This study developed an injectable hydrogel based on dual-modified hyaluronic acid for sustained delivery of exosome-cerium oxide nanocomposite (EXO@CeO2), targeting the pathological brain microenvironment after ischemic stroke. In an oxygen-glucose deprivation model, EXO@CeO2 effectively scavenged reactive oxygen species (ROS), reduced ROS-mediated apoptosis, stabilized mitochondrial membrane potential, and modulated inflammation by downregulating pro-inflammatory cytokines (IL-1β, IL-6) and upregulating anti-inflammatory IL-10. It also exhibited pro-angiogenic effects while preserving neuronal structure and function. In a murine photothrombotic stroke model, the hydrogel alleviated cerebral oxidative stress in the acute phase and promoted microglial polarization from the pro-inflammatory M1 to the anti-inflammatory M2 phenotype. During recovery, it improved local cerebral blood flow and led to sustained improvements in neurobehavioral function. In summary, this injectable hydrogel enables sustained codelivery of exosomes and cerium oxide, offering a combined therapy integrating antioxidant and exosome-mediated reparative effects for ischemic stroke. Collectively, this dual strategy simultaneously mitigates acute oxidative damage and promotes long-term neurovascular repair.
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