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Genomic Analysis of Reactive Astrogliosis

Overview
Journal J Neurosci
Specialty Neurology
Date 2012 May 4
PMID 22553043
Citations 1236
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Abstract

Reactive astrogliosis is characterized by a profound change in astrocyte phenotype in response to all CNS injuries and diseases. To better understand the reactive astrocyte state, we used Affymetrix GeneChip arrays to profile gene expression in populations of reactive astrocytes isolated at various time points after induction using two mouse injury models, ischemic stroke and neuroinflammation. We find reactive gliosis consists of a rapid, but quickly attenuated, induction of gene expression after insult and identify induced Lcn2 and Serpina3n as strong markers of reactive astrocytes. Strikingly, reactive astrocyte phenotype strongly depended on the type of inducing injury. Although there is a core set of genes that is upregulated in reactive astrocytes from both injury models, at least 50% of the altered gene expression is specific to a given injury type. Reactive astrocytes in ischemia exhibited a molecular phenotype that suggests that they may be beneficial or protective, whereas reactive astrocytes induced by LPS exhibited a phenotype that suggests that they may be detrimental. These findings demonstrate that, despite well established commonalities, astrocyte reactive gliosis is a highly heterogeneous state in which astrocyte activities are altered to respond to the specific injury. This raises the question of how many subtypes of reactive astrocytes exist. Our findings provide transcriptome databases for two subtypes of reactive astrocytes that will be highly useful in generating new and testable hypotheses of their function, as well as for providing new markers to detect different types of reactive astrocytes in human neurological diseases.

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References
1.
Lobo M, Karsten S, Gray M, Geschwind D, Yang X . FACS-array profiling of striatal projection neuron subtypes in juvenile and adult mouse brains. Nat Neurosci. 2006; 9(3):443-52. DOI: 10.1038/nn1654. View

2.
Lennon N, Kho A, Bacskai B, Perlmutter S, Hyman B, Brown Jr R . Dysferlin interacts with annexins A1 and A2 and mediates sarcolemmal wound-healing. J Biol Chem. 2003; 278(50):50466-73. DOI: 10.1074/jbc.M307247200. View

3.
Brambilla R, Hurtado A, Persaud T, Esham K, Pearse D, Oudega M . Transgenic inhibition of astroglial NF-kappa B leads to increased axonal sparing and sprouting following spinal cord injury. J Neurochem. 2009; 110(2):765-78. PMC: 4090052. DOI: 10.1111/j.1471-4159.2009.06190.x. View

4.
Olson J, Miller S . Microglia initiate central nervous system innate and adaptive immune responses through multiple TLRs. J Immunol. 2004; 173(6):3916-24. DOI: 10.4049/jimmunol.173.6.3916. View

5.
Takamiya A, Takeda M, Yoshida A, Kiyama H . Inflammation induces serine protease inhibitor 3 expression in the rat pineal gland. Neuroscience. 2002; 113(2):387-94. DOI: 10.1016/s0306-4522(02)00198-7. View