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首页> 外文期刊>CNS neuroscience & therapeutics. >Ultrastructural studies of the neurovascular unit reveal enhanced endothelial transcytosis in hyperglycemia‐enhanced hemorrhagic transformation after stroke
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Ultrastructural studies of the neurovascular unit reveal enhanced endothelial transcytosis in hyperglycemia‐enhanced hemorrhagic transformation after stroke

机译:神经血管单位的超微结构研究揭示了中风后高血糖增强出血性转化的增强内皮转红菌

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Aims Pre‐existing hyperglycemia (HG) aggravates the breakdown of blood–brain barrier (BBB) and increases the risk of hemorrhagic transformation (HT) after acute ischemic stroke in both animal models and patients. To date, HG‐induced ultrastructural changes of brain microvascular endothelial cells (BMECs) and the mechanisms underlying HG‐enhanced HT after ischemic stroke are poorly understood. Methods We used a mouse model of mild brain ischemia/reperfusion to investigate HG‐induced ultrastructural changes of BMECs that contribute to the impairment of BBB integrity after stroke. Adult male mice received systemic glucose administration 15?min before middle cerebral artery occlusion (MCAO) for 20?min. Ultrastructural characteristics of BMECs were evaluated using two‐dimensional and three‐dimensional electron microscopy and quantitatively analyzed. Results Mice with acute HG had exacerbated BBB disruption and larger brain infarcts compared to mice with normoglycemia (NG) after MCAO and 4?h of reperfusion, as assessed by brain extravasation of the Evans blue dye and microtubule‐associated protein 2 immunostaining. Electron microscopy further revealed that HG mice had more endothelial vesicles in the striatal neurovascular unit than NG mice, which may account for their deterioration of BBB impairment. In contrast with enhanced endothelial transcytosis, paracellular tight junction ultrastructure was not disrupted after this mild ischemia/reperfusion insult or altered upon HG. Consistent with the observed increase of endothelial vesicles, transcytosis‐related proteins caveolin‐1, clathrin, and hypoxia‐inducible factor (HIF)‐1α were upregulated by HG after MCAO and reperfusion. Conclusion Our study provides solid structural evidence to understand the role of endothelial transcytosis in HG‐elicited BBB hyperpermeability. Enhanced transcytosis occurs prior to the physical breakdown of BMECs and is a promising therapeutic target to preserve BBB integrity.
机译:AIMS预先存在的高血糖(HG)加剧了血脑屏障(BBB)的分解,并增加了动物模型和患者急性缺血性卒中后出血转化(HT)的风险。迄今为止,HG诱导的脑微血管内皮细胞(BMEC)的超微结构变化和缺血性卒中后HG增强HT的机制较差。方法采用轻度脑缺血/再灌注的小鼠模型,调查HG诱导的BMEC的超微结构变化,这些改变卒中后BBB完整性的损害。成年雄性小鼠接受全身葡萄糖给药15?min在中间脑动脉闭塞(MCAO),20?min。使用二维和三维电子显微镜评估BMEC的超微结构特征,并定量分析。结果急性Hg的小鼠加剧了BBB中断和较大的脑梗塞与MCAO和再灌注后的常规血糖(NG)的小鼠相比,如Evans蓝染料和微管相关蛋白2免疫染色的脑移位评估。电子显微镜进一步揭示了Hg小鼠在纹状体神经血管单元中具有比Ng小鼠更高的内皮囊泡,这可能考虑其对BBB损伤的恶化。与增强的内皮转红菌体相比,在这种轻微的缺血/再灌注损伤或改变Hg后,肺蛋白紧密结超微结构不会破坏。通过Hg和再灌注后观察到的内皮囊泡的增加的内皮囊泡的增加,转红枯病相关蛋白质Caveolin-1,Clathrin和缺氧诱导因子(HIF)-1α进行抑制。结论我们的研究提供了稳定的结构证据,了解内皮转胞增多症在HG引发的BBB高透模性中的作用。在BMECs的物理分解之前发生增强的转胞增强,并且是保存BBB完整性的有希望的治疗靶标。

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