首页> 外文期刊>Experimental Neurology >Impact of experimental acute hyponatremia on severe traumatic brain injury in rats: influences on injuries, permeability of blood-brain barrier, ultrastructural features, and aquaporin-4 expression.
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Impact of experimental acute hyponatremia on severe traumatic brain injury in rats: influences on injuries, permeability of blood-brain barrier, ultrastructural features, and aquaporin-4 expression.

机译:实验性急性低钠血症对大鼠严重颅脑损伤的影响:对损伤,血脑屏障通透性,超微结构特征和aquaporin-4表达的影响。

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摘要

The effects of acute hyponatremia on severe traumatic brain injury (TBI) in 35 adult male Sprague-Dawley rats were studied in a replicated focal and diffuse injury rat model. Such effects were assessed by the cerebral contusion volume and axonal injury (AI) densities, determined by quantitative immunoreactivity of beta-amyloid precursor protein, by blood-brain barrier (BBB) permeability based on endogenous IgG immunostaining, and by ultrastructural features. Significant increase of contusion volume (P < 0.05) and of AI in the segment of corpus callosum beneath the contusion (P < 0.05) and ipsilateral thalamus (P < 0.05) were observed at 4 h postinjury during the hyponatremic phase. No change in BBB permeability was observed in the hyponatremia + TBI (HT) groups. Significant swelling of perivascular astrocytic foot processes in the HT groups was seen at 4 h (P < 0.01) and 1 day postinjury (P < 0.01) by quantitative image analysis of ultrastructures. However, attenuated swelling of perivascular astrocytic foot processes in severely edematous medulla oblongata with simultaneous swelling of perikaryal astrocytic processes was observed in the HT 1-day group. The ultrastructural features were also correlated with the down-regulation of aquaporin-4 (AQP4) mRNA expression (P < 0.05). Results suggest that acute hyponatremia acts as one of the secondary insults following severe TBI. Such exacerbation may not be attributable to further disruption of BBB permeability, but rather to the ischemia resulting from the swelling of perivascular astrocytic foot processes impeding microcirculation. Down-regulated AQP4 mRNA expression may be one of the molecular mechanisms maintaining water homeostasis in diffusely injured brain exposed to acute hyponatremia.
机译:在复制的局灶性和弥漫性损伤大鼠模型中研究了急性低钠血症对35只成年雄性Sprague-Dawley大鼠的严重创伤性脑损伤(TBI)的影响。通过脑挫伤体积和轴突损伤(AI)密度,β-淀粉样蛋白前体蛋白的定量免疫反应性,基于内源性IgG免疫染色的血脑屏障(BBB)渗透性和超微结构特征来评估此类效应。在低钠血症期损伤后4 h,在挫伤下方的call体(P <0.05)和同侧丘脑(P <0.05)的call体节中,挫伤体积(P <0.05)和AI显着增加。低钠血症+ TBI(HT)组未观察到血脑屏障通透性的变化。通过超微结构的定量图像分析,HT组在损伤后4 h(P <0.01)和术后1天(P <0.01)观察到明显的血管周围星形胶质足突肿胀。但是,在HT 1天组中,观察到重度水肿延髓的血管周星形胶质细胞足突肿胀减弱,而同时伴有周基星形胶质细胞突肿胀。超微结构特征还与水通道蛋白4(AQP4)mRNA表达的下调相关(P <0.05)。结果表明,急性低钠血症是严重TBI后的继发性损伤之一。这种恶化可能不是由于血脑屏障通透性的进一步破坏,而是由于血管周围星形胶质细胞足突肿胀阻碍了微循环而引起的局部缺血。下调的AQP4 mRNA表达可能是维持急性低钠血症的弥漫性受伤的大脑中维持水稳态的分子机制之一。

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