Astrocytes are the major cell type of the central nervous system, wherein they perform critical roles in its development, maintenance, and response to injury. Activities now attributed to astrocytes include participation in the development and maintenance of neurons and oligodendrocytes, formation of the blood-brain barrier, recycling of glutamate, and potassium homeostasis. Recent findings that astrocytes produce and/or have receptors for a large array of neurotransmitters, neuropeptides, cytokines, and growth factors have further stimulated speculation concerning the roles of these cells. Nearly all of the suggested functions for astrocytes are based on observed correlations, and many of these have been made on cultured cells whose properties may differ from those in vivo. As an alternative approach to understanding astrocytes, it is proposed to study their function by analyzing the transcriptional regulation of the gene encoding glial fibrillary acidic protein (GFAP), an astrocyte-specific protein. These studies will primarily be performed by analyzing expression patterns of reporter gene constructs in transgenic mice.
In specific aim 1, a detailed analysis will be performed of a small, 124 bp region of the GFAP promoter that previous experiments have shown to be sufficient for astrocyte specificity of transcription in cultured cells. The objective is to identify the precise DNA sequences required, and then to use this information to isolate and characterize the mediating transcription factors to parse out the signaling pathways involved.
In specific aim 2, a large segment of the GFAP promoter will be examined that is required for transcription in astrocytes in certain brain regions, but not in others.
This specific aim seeks to better define differences among astrocytes, with the ultimate goal of understanding the functional consequences of astrocyte heterogeneity.
In specific aim 3, more sophisticated tools will be developed for expressing transgenes in astrocytes. These tools include GFAP-based promoters that can be turned on and off, that are more potent, and that target specific subclasses of astrocytes. These tools will facilitate hypothesis-testing, creation of disease models, and gene therapy.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
5R01NS039055-04
Application #
6540145
Study Section
Special Emphasis Panel (ZRG1-MDCN-2 (02))
Program Officer
Kleitman, Naomi
Project Start
1999-07-15
Project End
2004-06-30
Budget Start
2002-07-01
Budget End
2003-06-30
Support Year
4
Fiscal Year
2002
Total Cost
$234,759
Indirect Cost
Name
University of Alabama Birmingham
Department
Neurosciences
Type
Schools of Medicine
DUNS #
004514360
City
Birmingham
State
AL
Country
United States
Zip Code
35294
Brenner, Michael (2014) Role of GFAP in CNS injuries. Neurosci Lett 565:7-13
Yeo, Sujeong; Bandyopadhyay, Susanta; Messing, Albee et al. (2013) Transgenic analysis of GFAP promoter elements. Glia 61:1488-99
Lee, Youngjin; Messing, Albee; Su, Mu et al. (2008) GFAP promoter elements required for region-specific and astrocyte-specific expression. Glia 56:481-93
Liu, Beihui; Wang, Shu; Brenner, Michael et al. (2008) Enhancement of cell-specific transgene expression from a Tet-Off regulatory system using a transcriptional amplification strategy in the rat brain. J Gene Med 10:583-92
Lee, Youngjin; Su, Mu; Messing, Albee et al. (2006) Astrocyte heterogeneity revealed by expression of a GFAP-LacZ transgene. Glia 53:677-87
de Leeuw, Bertie; Su, Mu; ter Horst, Maarten et al. (2006) Increased glia-specific transgene expression with glial fibrillary acidic protein promoters containing multiple enhancer elements. J Neurosci Res 83:744-53
Li, Rong; Johnson, Anne B; Salomons, Gajja et al. (2005) Glial fibrillary acidic protein mutations in infantile, juvenile, and adult forms of Alexander disease. Ann Neurol 57:310-26
Lupien, Caroline; Brenner, Michael; Guerin, Sylvain L et al. (2004) Expression of glial fibrillary acidic protein in primary cultures of human Muller cells. Exp Eye Res 79:423-9
Thyagarajan, Dominic; Chataway, Timothy; Li, Rong et al. (2004) Dominantly-inherited adult-onset leukodystrophy with palatal tremor caused by a mutation in the glial fibrillary acidic protein gene. Mov Disord 19:1244-8
Su, Mu; Hu, Huimin; Lee, Youngjin et al. (2004) Expression specificity of GFAP transgenes. Neurochem Res 29:2075-93