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黄芪甲苷负载聚己内酯膜修复创伤性脊髓损伤中的血脊髓屏障并恢复脊髓功能。

Astragoloside IV Loaded Polycaprolactone Membrane Repairs Blood Spinal Cord Barrier and Recovers Spinal Cord Function in Traumatic Spinal Cord Injury.

作者信息

Zhang Di, Wang Quan, Wang Sheng, Huang Yixing, Tian Naifeng, Wu Yan, Wu Yaosen, Zhou Yifei, Xu Huazi, Zhang Xiaolei

出版信息

J Biomed Nanotechnol. 2019 Apr 1;15(4):799-812. doi: 10.1166/jbn.2019.2715.

DOI:10.1166/jbn.2019.2715
PMID:30841972
Abstract

Traumatic Spinal Cord Injury (SCI) is a serious challenge of CNS which may oftenly result in permanent paralysis and disability. The disruption of blood spinal cord barrier (BSCB) is a major step in the secondary injury of SCI. Until recently there are no restorative therapies for traumatic SCI. BSCB is considered to be a therapeutic target for SCI, however few biomaterials have been developed to restore the disrupted BSCB in SCI. In this study, an AST-PCL membrane was fabricated with a steady release of Astragoloside IV (AST) and its effects on BSCB repair as well as the functional recovery of SCI were evaluated. Firstly, this study demonstrated that AST-PCL (polycaprolactone) degradation media protects endothelial cells from apoptosis by down-regulating the expression of cleaved Caspase 3 and decreasing the ratio of Bax/Bcl-2, it also attenuates the stress fiber formation . Secondly, the rat model of traumatic SCI showed that AST-PCL treatment inhibits the disruption of BSCB permeability, as detected by MRI, Evan's Blue extravasation and water content. Thirdly, this study found that AST-PCL up-regulates the level of tight junction proteins including Occludin, Claudin5 and ZO-1. Furthermore, it is also demonstrated that AST-PCL treatment down-regulates Matrix metalloproteinase-9 secretion and diminishes neutrophil infiltration. Finally, this study found that AST-PCL treatment could significantly inhibit apoptosis, decrease tissue damage and improve functional recovery in SCI rats. Taken together, this study shows that AST-PCL might be an efficient biomaterial for BSCB repair and a potential drug therapy for SCI.

摘要

创伤性脊髓损伤(SCI)是中枢神经系统面临的一项严峻挑战,常常会导致永久性瘫痪和残疾。血脊髓屏障(BSCB)的破坏是SCI继发性损伤的一个重要环节。直到最近,仍没有针对创伤性SCI的恢复性治疗方法。BSCB被认为是SCI的一个治疗靶点,然而,很少有生物材料被开发用于修复SCI中受损的BSCB。在本研究中,制备了一种能持续释放黄芪甲苷(AST)的AST-PCL膜,并评估了其对BSCB修复以及SCI功能恢复的影响。首先,本研究表明AST-PCL(聚己内酯)降解培养基通过下调裂解的半胱天冬酶3的表达和降低Bax/Bcl-2比值来保护内皮细胞免于凋亡,它还能减弱应力纤维的形成。其次,创伤性SCI大鼠模型显示,通过MRI、伊文思蓝外渗和含水量检测发现,AST-PCL治疗可抑制BSCB通透性的破坏。第三,本研究发现AST-PCL上调包括闭合蛋白、Claudin5和紧密连接蛋白1在内的紧密连接蛋白水平。此外,还证明AST-PCL治疗可下调基质金属蛋白酶-9的分泌并减少中性粒细胞浸润。最后,本研究发现AST-PCL治疗可显著抑制SCI大鼠的细胞凋亡,减少组织损伤并改善功能恢复。综上所述,本研究表明AST-PCL可能是一种用于BSCB修复的有效生物材料,也是一种潜在的SCI药物治疗方法。

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