首页> 美国卫生研究院文献>Journal of Cerebral Blood Flow Metabolism >Irradiation to the young mouse brain caused long-term progressive depletion of neurogenesis but did not disrupt the neurovascular niche
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Irradiation to the young mouse brain caused long-term progressive depletion of neurogenesis but did not disrupt the neurovascular niche

机译:辐射到幼鼠的大脑会导致长期的逐步的神经发生耗竭但并未破坏神经血管的生态位

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摘要

We investigated the effects of ionizing radiation on microvessel structure and complexity in the hippocampus. We also assessed neurogenesis and the neurovascular niche. Postnatal day 14 male C57BL/6 mice received a single dose of 8 Gy to the whole brain and were killed 6 hours, 1 week, 7 weeks, or 1 year later. Irradiation decreased the total number of microvessels and branching points from 1 week onwards and decreased the total microvessel area 1 and 7 weeks after irradiation. After an initial increase in vascular parameter densities, concomitant with reduced growth of the hippocampus, the densities normalized with time, presumably adapting to the needs of the surrounding nonvascular tissue. Irradiation decreased the number of neural stem and progenitor cells in the hippocampus. The relative loss increased with time, resulting in almost completely ablated neurogenesis (DCX+ cells) 1 year after irradiation (77% decreased 1 week, 86% decreased 7 weeks, and 98% decreased 1 year after irradiation compared with controls). After irradiation, the distance between undifferentiated stem cells and microvessels was unaffected, and very few dying endothelial cells were detected. Taken together, these results indicate that the vasculature adjusts to the surrounding neural and glial tissue after irradiation, not vice-versa.
机译:我们研究了电离辐射对海马微血管结构和复杂性的影响。我们还评估了神经发生和神经血管的利基。出生后第14天的雄性C57BL / 6小鼠全脑接受单剂量的8 doseGy,并在6小时,1周,7周或1年后被处死。辐照从1周开始减少了微血管和分支点的总数,并在辐照后1和7周减少了微血管的总面积。在最初的血管参数密度增加后,海马的生长减少,密度随时间恢复正常,大概是适应周围非血管组织的需要。辐射减少了海马中神经干细胞和祖细胞的数量。相对损失随时间增加,导致照射后1年几乎完全消融的神经发生(DCX + 细胞)(照射后1周减少了77%,照射7周减少了86%,照射1年减少了98%)与对照相比)。照射后,未分化的干细胞与微血管之间的距离不受影响,并且几乎没有检测到垂死的内皮细胞。综上所述,这些结果表明在照射后,脉管系统适应周围的神经和神经胶质组织,反之亦然。

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