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Matrix-bound nanovesicles prevent ischemia-induced retinal ganglion cell axon degeneration and death and preserve visual function

机译:基质结合的纳米囊泡可预防缺血性视网膜神经节细胞轴突变性和死亡并保持视觉功能

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Injury to retinal ganglion cells (RGC), central nervous system neurons that relay visual information to the brain, often leads to RGC axon degeneration and permanently lost visual function. Herein this study shows matrix-bound nanovesicles (MBV), a distinct class of extracellular nanovesicle localized specifically to the extracellular matrix (ECM) of healthy tissues, can neuroprotect RGCs and preserve visual function after severe, intraocular pressure (IOP) induced ischemia in rat. Intravitreal MBV injections attenuated IOP-induced RGC axon degeneration and death, protected RGC axon connectivity to visual nuclei in the brain, and prevented loss in retinal function as shown by histology, anterograde axon tracing, manganese-enhanced magnetic resonance imaging, and electroretinography. In the optic nerve, MBV also prevented IOP-induced decreases in growth associated protein-43 and IOP-induced increases in glial fibrillary acidic protein. In vitro studies showed MBV suppressed pro-inflammatory signaling by activated microglia and astrocytes, stimulated RGC neurite growth, and neuroprotected RGCs from neurotoxic media conditioned by pro-inflammatory astrocytes. Thus, MBV can positively modulate distinct signaling pathways (e.g., inflammation, cell death, and axon growth) in diverse cell types. Since MBV are naturally derived, bioactive factors present in numerous FDA approved devices, MBV may be readily useful, not only experimentally, but also clinically as immunomodulatory, neuroprotective factors for treating trauma or disease in the retina as well as other CNS tissues.
机译:视网膜神经节细胞(RGC)是将视觉信息传递到大脑的中枢神经系统神经元,通常会导致RGC轴突变性并永久丧失视觉功能。本文的研究显示基质结合的纳米囊泡(MBV)是一类独特的细胞外纳米囊泡,专门定位于健康组织的细胞外基质(ECM),可以在严重的眼压(IOP)诱导的大鼠缺血后对RGCs进行神经保护,并保留视觉功能。玻璃体腔内注射MBV可减轻IOP诱导的RGC轴突变性和死亡,保护RGC轴突与大脑视觉核的连接,并防止视网膜功能丧失,如组织学,顺行轴突追踪,锰增强的磁共振成像和视网膜电图检查所显示。在视神经中,MBV还阻止了IOP诱导的与生长相关的蛋白43的减少和IOP诱导的神经胶质原纤维酸性蛋白的增加。体外研究表明,MBV抑制了激活的小胶质细胞和星形胶质细胞的促炎信号传导,刺激了RGC神经突生长,并通过促炎性星形胶质细胞调节了神经毒性介质的神经保护性RGC。因此,MBV可以正向调节不同细胞类型中不同的信号传导途径(例如,炎症,细胞死亡和轴突生长)。由于MBV是天然来源的,生物活性因子存在于许多FDA批准的设备中,因此MBV不仅可以在实验上而且在临床上都可以很容易地用作免疫调节性神经保护因子,用于治疗视网膜以及其他CNS组织的创伤或疾病。

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