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在G93A SOD1肌萎缩侧索硬化症小鼠模型中,皮质星形胶质细胞经历转录组失调。

Cortical astroglia undergo transcriptomic dysregulation in the G93A SOD1 ALS mouse model.

作者信息

Miller Sean J, Glatzer Jenna C, Hsieh Yi-Chun, Rothstein Jeffrey D

机构信息

a Department of Neurology , Johns Hopkins School of Medicine , Baltimore , MD , USA.

b Department of Cellular and Molecular Medicine , Johns Hopkins School of Medicine , Baltimore , MD , USA.

出版信息

J Neurogenet. 2018 Dec;32(4):322-335. doi: 10.1080/01677063.2018.1513508. Epub 2018 Nov 6.

Abstract

Astroglia are the most abundant glia cell in the central nervous system, playing essential roles in maintaining homeostasis. Key functions of astroglia include, but are not limited to, neurotransmitter recycling, ion buffering, immune modulation, neurotrophin secretion, neuronal synaptogenesis and elimination, and blood-brain barrier maintenance. In neurological diseases, it is well appreciated that astroglia play crucial roles in the disease pathogenesis. In amyotrophic lateral sclerosis (ALS), a motor neuron degenerative disease, astroglia in the spinal cord and cortex downregulate essential transporters, among other proteins, that exacerbate disease progression. Spinal cord astroglia undergo dramatic transcriptome dysregulation. However, in the cortex, it has not been well studied what effects glia, especially astroglia, have on upper motor neurons in the pathology of ALS. To begin to shed light on the involvement and dysregulation that astroglia undergo in ALS, we isolated pure grey-matter cortical astroglia and subjected them to microarray analysis. We uncovered a vast number of genes that show dysregulation at end-stage in the ALS mouse model, G93A SOD1. Many of these genes play essential roles in ion homeostasis and the Wnt-signaling pathway. Several of these dysregulated genes are common in ALS spinal cord astroglia, while many of them are unique. This database serves as an approach for understanding the significance of dysfunctional genes and pathways in cortical astroglia in the context of motor neuron disease, as well as determining regional astroglia heterogeneity, and providing insight into ALS pathogenesis.

摘要

星形胶质细胞是中枢神经系统中数量最多的胶质细胞,在维持内环境稳态中发挥着重要作用。星形胶质细胞的关键功能包括但不限于神经递质循环、离子缓冲、免疫调节、神经营养因子分泌、神经元突触形成和消除以及血脑屏障维持。在神经疾病中,人们充分认识到星形胶质细胞在疾病发病机制中起着关键作用。在肌萎缩侧索硬化症(ALS),一种运动神经元退行性疾病中,脊髓和皮质中的星形胶质细胞下调重要转运蛋白以及其他蛋白质,从而加剧疾病进展。脊髓星形胶质细胞经历显著的转录组失调。然而,在皮质中,关于胶质细胞,尤其是星形胶质细胞,在ALS病理学中对上位运动神经元有何影响尚未得到充分研究。为了开始阐明星形胶质细胞在ALS中所经历的参与和失调情况,我们分离了纯灰质皮质星形胶质细胞并对其进行微阵列分析。我们发现了大量在ALS小鼠模型G93A SOD1终末期表现出失调的基因。这些基因中的许多在离子稳态和Wnt信号通路中发挥着重要作用。这些失调基因中有几个在ALS脊髓星形胶质细胞中很常见,而其中许多是独特的。这个数据库有助于理解运动神经元疾病背景下皮质星形胶质细胞中功能失调基因和通路的重要性,确定区域星形胶质细胞异质性,并深入了解ALS发病机制。

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