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Astrocyte membrane properties are altered in a rat model of developmental cortical malformation but single-cell astrocytic glutamate uptake is robust

机译:在发育性皮质畸形的大鼠模型中,星形胶质细胞膜的性质发生改变,但单细胞星形细胞谷氨酸的摄取很强

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Developmental cortical malformations (DCMs) are linked with severe epilepsy and are caused by both genetic and environmental insults. DCMs include several neurological diseases, such as focal cortical dysplasia, polymicrogyria, schizencephaly, and others. Human studies have implicated astrocyte reactivity and dysfunction in the pathophysiology of DCMs, but their specific role is unknown. As astrocytes powerfully regulate glutamate neurotransmission, and glutamate levels are known to be increased in human epileptic foci, understanding the role of astrocytes in the pathological sequelae of DCMs is extremely important. Additionally, recent studies examining astrocyte glutamate uptake in DCMs have reported conflicting results, adding confusion to the field. In this study we utilized the freeze lesion (FL) model of DCM, which is known to induce reactive astrocytosis and cause significant changes in astrocyte morphology, proliferation, and distribution. Using whole-cell patch clamp recording from astrocytes, we recorded both UV-uncaging and synaptically evoked glutamate transporter currents (TCs), widely accepted assays of functional glutamate transport by astrocytes. With this approach, we set out to test the hypothesis that astrocyte membrane properties and glutamate transport were disrupted in this model of DCM. Though we found that the developmental maturation of astrocyte membrane resistance was disrupted by FL, glutamate uptake by individual astrocytes was robust throughout FL development. Interestingly, using an immunolabeling approach, we observed spatial and developmental differences in excitatory amino acid transporter (EAAT) expression in FL cortex. Spatially specific differences in EAAT2 (GLT-1) and EAAT1 (GLAST) expression suggest that the relative contribution of each EAAT to astrocytic glutamate uptake may be altered in FL cortex. Lastly, we carefully analyzed the amplitudes and onset times of both synaptically- and UV uncaging-evoked TCs. We found that in the FL cortex, synaptically-evoked, but not UV uncaging-evoked TCs, were larger in amplitude. Additionally, we found that the amount of electrical stimulation required to evoke a synaptic TC was significantly reduced in the FL cortex. Both of these findings are consistent with increased excitatory input to the FL cortex, but not with changes in how individual astrocytes remove glutamate. Taken together, our results demonstrate that the maturation of astrocyte membrane resistance, local distribution of glutamate transporters, and glutamatergic input to the cortex are altered in the FL model, but that single-cell astrocytic glutamate uptake is robust. (C) 2016 Elsevier Inc. All rights reserved.
机译:发育性皮质畸形(DCM)与严重的癫痫病相关,并且是由遗传和环境侵害引起的。 DCM包括几种神经系统疾病,例如局灶性皮质发育异常,多毛小球菌,裂脑畸形等。人体研究表明,DCM的病理生理学涉及星形胶质细胞反应性和功能障碍,但其具体作用尚不清楚。由于星形胶质细胞强有力地调节谷氨酸的神经传递,并且已知谷氨酸水平在人癫痫病灶中升高,因此了解星形胶质细胞在DCM的病理后遗症中的作用极为重要。此外,最近检查DCM中星形胶质细胞谷氨酸摄取的研究报告了相互矛盾的结果,给该领域增加了困惑。在这项研究中,我们利用了DCM的冷冻病变(FL)模型,该模型可诱导反应性星形细胞增多并引起星形胶质细胞形态,增殖和分布的显着变化。使用星形胶质细胞的全细胞膜片钳记录,我们记录了紫外线释放和突触诱发的谷氨酸转运蛋白电流(TCs),是星形胶质细胞功能性谷氨酸转运的广泛接受的测定方法。通过这种方法,我们开始测试在这种DCM模型中星形胶质细胞膜特性和谷氨酸转运受到破坏的假设。尽管我们发现星形胶质细胞膜抗性的发育成熟受到FL的破坏,但整个FL发育过程中单个星形胶质细胞对谷氨酸的摄取很强。有趣的是,使用免疫标记方法,我们观察了FL皮质中兴奋性氨基酸转运蛋白(EAAT)表达的空间和发育差异。 EAAT2(GLT-1)和EAAT1(GLAST)表达的空间特异性差异表明,每个EAAT对星形胶质谷氨酸摄取的相对贡献可能在FL皮层中改变。最后,我们仔细分析了突触和紫外线未诱发的TC的幅度和开始时间。我们发现,在FL皮层中,突触诱发的TCs,而不是紫外线未诱发的TCs,振幅更大。此外,我们发现在FL皮层中,引起突触TC所需的电刺激量明显减少。这两个发现都与增加对FL皮层的兴奋性输入相一致,但与单个星形胶质细胞去除谷氨酸的方式变化并不相符。两者合计,我们的结果表明,在FL模型中,星形胶质细胞膜抗性的成熟,谷氨酸转运蛋白的局部分布以及向皮层的谷氨酸能输入发生了改变,但是单细胞星形细胞谷氨酸的吸收却很稳定。 (C)2016 Elsevier Inc.保留所有权利。

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