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具有高效活性氧清除和抗炎作用的仿生导电取向纳米纤维毡,用于诱导M2巨噬细胞极化并加速脊髓损伤修复。

Bioinspired conductive oriented nanofiber felt with efficient ROS clearance and anti-inflammation for inducing M2 macrophage polarization and accelerating spinal cord injury repair.

作者信息

Zhang Qingxia, Zheng Jiahe, Li Linlong, Yeh Jui-Ming, Xie Xianrui, Zhao Yuqing, Li Chengbo, Hou Guige, Yan Huanhuan

机构信息

School of Pharmacy, The Key Laboratory of Prescription Effect and Clinical Evaluation of State Administration of Traditional Chinese Medicine of China, Binzhou Medical University, Yantai, 264003, PR China.

Key Laboratory of Polymer Ecomaterials, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, 5625 Renmin Street, Changchun, 130022, PR China.

出版信息

Bioact Mater. 2024 Dec 13;46:173-194. doi: 10.1016/j.bioactmat.2024.12.009. eCollection 2025 Apr.

Abstract

Complete spinal cord injury (SCI) causes permanent locomotor, sensory and neurological dysfunctions. Targeting complex immunopathological microenvironment at SCI sites comprising inflammatory cytokines infiltration, oxidative stress and massive neuronal apoptosis, the conductive oriented nanofiber felt with efficient ROS clearance, anti-inflammatory effect and accelerating neural regeneration is constructed by step-growth addition polymerization and electrostatic spinning technique for SCI repair. The formation of innovative Fe-PDA-PAT chelate in nanofiber felt enhances hydrophilic, antioxidant, antibacterial, hemostatic and binding factor capacities, thereby regulating immune microenvironment of SCI. With the capabilities of up-regulating COX5A and STAT6 expressions, down-regulating the expressions of IL1β, CD36, p-ERK, NFκB2 and NFκB signaling pathway proteins, the nanofiber felt attenuates oxidative stress injury, promotes M2 macrophage polarization and down-regulates inflammatory response. After implantation into complete transection SCI rats, the nanofiber felt is revealed to recruit endogenous NSCs, induce the differentiation of NSCs into neurons while inhibit astrocytes formation and inflammation, reduces glia scar, and promotes angiogenesis, remyelination and neurological functional recovery. Overall, this innovative strategy provides a facile immune regulatory system to inhibit inflammatory response and accelerate nerve regeneration after SCI, and its targeted proteins and mechanisms are first elucidated, which holds great application promise in clinical treatment of complete SCI.

摘要

完全性脊髓损伤(SCI)会导致永久性的运动、感觉和神经功能障碍。针对SCI部位复杂的免疫病理微环境,包括炎性细胞因子浸润、氧化应激和大量神经元凋亡,通过逐步增长加成聚合和静电纺丝技术构建了具有高效活性氧清除、抗炎作用和促进神经再生功能的导电定向纳米纤维毡,用于SCI修复。纳米纤维毡中创新的Fe-PDA-PAT螯合物的形成增强了亲水性、抗氧化、抗菌、止血和结合因子能力,从而调节SCI的免疫微环境。纳米纤维毡具有上调COX5A和STAT6表达、下调IL1β、CD36、p-ERK、NFκB2和NFκB信号通路蛋白表达的能力,可减轻氧化应激损伤,促进M2巨噬细胞极化并下调炎症反应。将纳米纤维毡植入完全横断性SCI大鼠后,发现其可募集内源性神经干细胞,诱导神经干细胞分化为神经元,同时抑制星形胶质细胞形成和炎症,减少胶质瘢痕,并促进血管生成、髓鞘再生和神经功能恢复。总体而言,这一创新策略提供了一种简便的免疫调节系统,可抑制SCI后的炎症反应并加速神经再生,首次阐明了其靶向蛋白和机制,在完全性SCI的临床治疗中具有巨大的应用前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9e4c/11699466/a6540956b67c/ga1.jpg

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