Stroke is the third leading cause of death in the United States and is frequently associated with long-term disability. We propose to apply a systematic strategy using oligonucleotide micro-array technology to identify genes involved in the initiation of stroke in two animal models: the stroke-prone spontaneously hypertensive rat (SHRSP) and the atherosclerosis-susceptible dog. We then propose to investigate the relevance of DNA sequence variation in the expressional candidate genes to susceptibility for human stroke in a large population-based study. We postulate that deviations from normal physiologic processes leading to stroke are accompanied by cellular and biochemical alterations which are reflected by changes in gene expression patterns in susceptible tissues. We further hypothesize that inherited DNA sequence variation in these same genes are at least partially responsible for interindividual variation in stroke susceptibility. These hypotheses will be addressed in four specific aims. In the first aim, we propose to apply the newly developed oligonucleotide micro-array technology to identify expressional candidate genes contributing to stroke occurrence in the SHRSP, a hypertension-related model of human stroke. The expression level of more than 24,000 gene transcripts will be simultaneously monitored in brain tissue and compared between the SHR and SHRSP rat. In the second aim, we propose to apply a similar but more focused technology to identify expressional candidate genes contributing to stroke in the atherosclerosis- susceptible dog, a unique atherosclerosis-related model of human stroke. In the last two aims, we will evaluate the potential relevance to human disease of the information obtained from the two animal models. Specifically, we will characterize sequence variation within or near the human homologue of 20 genes and determine whether variation in these genes is associated with stroke incidence in a large population-based sample of individuals participating in the Atherosclerosis Risk in Communities (ARIC) study. In the third aim, we will use direct DNA re- sequencing to identify variation within or near the human homologue of 10 expressional candidate genes identified in aims 1 and 2. We will also identify sequence variation in the coding and 5' regulatory regions of 10 additional biological candidate genes. In the fourth aim, we will determine whether DNA sequence variation in the genes identified in Aim 3 contributes to interindividual variation in risk of developing stroke in a well characterized sample of Caucasians and African-Americans. These studies represent a first step in unraveling the genetic architecture of stroke susceptibility in the population-at-large. This collaborative effort is novel for its ability to translate unique animal model research findings to the human condition.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
5R01NS041466-02
Application #
6394435
Study Section
Special Emphasis Panel (ZHL1-CSR-B (M1))
Program Officer
Jacobs, Tom P
Project Start
2000-09-30
Project End
2005-08-31
Budget Start
2001-09-01
Budget End
2002-08-31
Support Year
2
Fiscal Year
2001
Total Cost
$373,542
Indirect Cost
Name
University of Texas Health Science Center Houston
Department
Genetics
Type
Schools of Public Health
DUNS #
City
Houston
State
TX
Country
United States
Zip Code
77225
Dmitrieva, Renata I; Hinojos, Cruz A; Grove, Megan L et al. (2009) Genome-wide identification of allelic expression in hypertensive rats. Circ Cardiovasc Genet 2:106-15
Fornage, Myriam (2009) Genetics of stroke. Curr Atheroscler Rep 11:167-74
Corenblum, Mandi J; Wise, Vance E; Georgi, Katrin et al. (2008) Altered soluble epoxide hydrolase gene expression and function and vascular disease risk in the stroke-prone spontaneously hypertensive rat. Hypertension 51:567-73
Tan, Yuan-De; Fornage, Myriam (2008) Mapping functions. Genetica 133:235-46
Wei, Qi; Doris, Peter A; Pollizotto, Martin V et al. (2007) Sequence variation in the soluble epoxide hydrolase gene and subclinical coronary atherosclerosis: interaction with cigarette smoking. Atherosclerosis 190:26-34
Tan, Yuan-De; Fornage, Myriam; George, Varghese et al. (2007) Parent-child pair design for detecting gene-environment interactions in complex diseases. Hum Genet 121:745-57
Fornage, Myriam; Mosley, Thomas H; Jack, Clifford R et al. (2007) Family-based association study of matrix metalloproteinase-3 and -9 haplotypes with susceptibility to ischemic white matter injury. Hum Genet 120:671-80
Lee, Craig R; North, Kari E; Bray, Molly S et al. (2006) Genetic variation in soluble epoxide hydrolase (EPHX2) and risk of coronary heart disease: The Atherosclerosis Risk in Communities (ARIC) study. Hum Mol Genet 15:1640-9
Fornage, Myriam; Lee, Craig R; Doris, Peter A et al. (2005) The soluble epoxide hydrolase gene harbors sequence variation associated with susceptibility to and protection from incident ischemic stroke. Hum Mol Genet 14:2829-37
Doris, Peter A; Fornage, Myriam (2005) The transcribed genome and the heritable basis of essential hypertension. Cardiovasc Toxicol 5:95-108

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