ROS-responsive biomimetic nanosystem camouflaged by hybrid membranes of platelet-exosomes engineered with neuronal targeting peptide for TBI therapy

神经保护 神经炎症 创伤性脑损伤 微泡 药理学 外体 吡格列酮 医学 化学 神经科学 炎症 细胞生物学 生物 免疫学 生物化学 小RNA 糖尿病 内分泌学 基因 精神科 2型糖尿病
作者
Yi Li,Xin Xin,Xun Zhou,Jingzhou Liu,Hangbing Liu,Shuo Yuan,Hanhan Liu,Wenyan Hao,Jiejie Sun,Yuli Wang,Wei Gong,Meiyan Yang,Zhiping Li,Han Yang,Chunsheng Gao,Yang Yang
出处
期刊:Journal of Controlled Release [Elsevier BV]
卷期号:372: 531-550 被引量:1
标识
DOI:10.1016/j.jconrel.2024.06.018
摘要

Recovery and survival following traumatic brain injury (TBI) depends on optimal amelioration of secondary injuries at lesion site. Delivering mitochondria-protecting drugs to neurons may revive damaged neurons at sites secondarily traumatized by TBI. Pioglitazone (PGZ) is a promising candidate for TBI treatment, limited by its low brain accumulation and poor targetability to neurons. Herein, we report a ROS-responsive nanosystem, camouflaged by hybrid membranes of platelets and engineered extracellular vesicles (EVs) (C3-EPm-|TKNPs|), that can be used for targeted delivery of PGZ for TBI therapy. Inspired by intrinsic ability of macrophages for inflammatory chemotaxis, engineered M2-like macrophage-derived EVs were constructed by fusing C3 peptide to EVs membrane integrator protein, Lamp2b, to confer them with ability to target neurons in inflamed lesions. Platelets provided hybridized EPm with capabilities to target hemorrhagic area caused by trauma via surface proteins. Consequently, C3-EPm-|PGZ-TKNPs| were orientedly delivered to neurons located in the traumatized hemisphere after intravenous administration, and triggered the release of PGZ from TKNPs via oxidative stress. The current work demonstrate that C3-EPm-|TKNPs| can effectively deliver PGZ to alleviate mitochondrial damage via mitoNEET for neuroprotection, further reversing behavioral deficits in TBI mice. Our findings provide proof-of-concept evidence of C3-EPm-|TKNPs|-derived nanodrugs as potential clinical approaches against neuroinflammation-related intracranial diseases.
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