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首页> 外文期刊>Acta Neuropathologica Communications >Astrocytes differentially respond to inflammatory autoimmune insults and imbalances of neural activity
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Astrocytes differentially respond to inflammatory autoimmune insults and imbalances of neural activity

机译:星形胶质细胞对炎症性自身免疫损伤和神经活动失衡的反应不同

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BackgroundNeuronal activity intimately communicates with blood flow through the blood–brain barrier (BBB) in the central nervous system (CNS). Astrocyte endfeet cover more than 90% of brain capillaries and interact with synapses and nodes of Ranvier. The roles of astrocytes in neurovascular coupling in the CNS remain poorly understood. ResultsHere we show that astrocytes that are intrinsically different are activated by inflammatory autoimmune insults and alterations of neuronal activity. In the progression of experimental autoimmune encephalomyelitis (EAE), both fibrous and protoplasmic astrocytes were broadly and reversibly activated in the brain and spinal cord, indicated by marked upregulation of glial fibrillary acidic protein (GFAP) and other astrocytic proteins. In early and remitting EAE, upregulated GFAP and astrocytic endfoot water channel aquaporin 4 (AQP4) enclosed white matter lesions in spinal cord, whereas they markedly increased and formed bundles in exacerbated lesions in late EAE. In cerebellar cortex, upregulation of astrocytic proteins correlated with EAE severity. On the other hand, protoplasmic astrocytes were also markedly activated in the brains of ankyrin-G (AnkG) and Kv3.1 KO mice, where neuronal activities are altered. Massive astrocytes replaced degenerated Purkinje neurons in AnkG KO mice. In Kv3.1 KO mice, GFAP staining significantly increased in cerebellar cortex, where Kv3.1 is normally highly expressed, but displayed in a patchy pattern in parts of the hippocampus. ConclusionsThus, astrocytes can detect changes in both blood and neurons, which supports their central role in neurovascular coupling. These studies contribute to the development of new strategies of neuroprotection and repair for various diseases, through activity-dependent regulation of neurovascular coupling.
机译:背景神经活动与通过中枢神经系统(CNS)的血脑屏障(BBB)的血流密切相关。星形胶质细胞末梢覆盖了90%以上的脑毛细血管,并与Ranvier的突触和淋巴结相互作用。星形胶质细胞在中枢神经系统神经血管耦合中的作用仍然知之甚少。结果在此我们发现,本质上不同的星形胶质细胞被炎性自身免疫损伤和神经元活性的改变激活。在实验性自身免疫性脑脊髓炎(EAE)的进展过程中,脑和脊髓中的纤维状和原生质性星形胶质细胞均被广泛且可逆地激活,这由神经胶质纤维酸性蛋白(GFAP)和其他星形细胞蛋白的明显上调所表明。在早期和缓解期EAE中,GFAP和星形胶质尾足水通道水通道水通道蛋白4(AQP4)的上调封闭了脊髓中的白质损伤,而在晚期EAE中,它们在病情加重时明显增多并形成了束。在小脑皮质中,星形细胞蛋白的上调与EAE的严重程度有关。另一方面,锚蛋白-G(AnkG)和Kv3.1 KO小鼠的大脑中,原生质体星形胶质细胞也被明显激活,神经元活性发生了改变。大量的星形胶质细胞替代了AnkG KO小鼠中退化的浦肯野神经元。在Kv3.1 KO小鼠中,小脑皮质中GFAP染色显着增加,而Kv3.1通常在该小脑皮质中高度表达,但在海马部分呈斑块状显示。结论因此,星形胶质细胞可以检测血液和神经元的变化,这支持它们在神经血管偶联中的重要作用。这些研究通过神经血管偶联的活性依赖性调节,为各种疾病的神经保护和修复新策略的发展做出了贡献。

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