The goal of this proposal is to determine the mechanisms responsible for the transport of ions across the blood-brain barrier (BBB) and to understand how these processes are regulated. The BBB is formed by capillary endothelial cells which control the flux of solutes between blood and brain, thus regulating the composition of the brain's interstitial fluid. To accomplish this task, the capillary endothelium acts similarly to an epithelium actively transporting ions and water across its cells. The ion transporters are likely to be important for maintaining the Na and K homeostasis with the brain for optimal neuronal activity. When this mechanism is disrupted, neuronal dysfunction and/or brain edema results. In the previous grant period, the investigator showed that the blood to brain Na transport plays an important role in the development of brain edema during ischemia. These results led the investigator to postulate that the concentration of K in the brain interstitial fluid (Ke) is an important modulator for Na transport into the brain. An increase in Ke would increase K extrusion into the capillaries and accelerate the flux of Na from the blood into the brain. The present proposal is an effort to test this hypothesis by simultaneously measuring Ke (with K-sensitive electrodes), Na and CI transport under three conditions where Ke is elevated: a) reperfusion following complete cerebral ischemia; b) incomplete cerebral ischemia and c) severe hypoglycemia. He will investigate the importance of Na, K-ATPase, sodium channels and sodium co-transport systems in the blood to brain Na transport. For this purpose, he will use conditions in which the capillary Na, K-ATPase system is up- or down-regulated and by administering potent inhibitors of the Na channels or Na-CI transport.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
2R01NS023870-04A1
Application #
3407857
Study Section
Neurology A Study Section (NEUA)
Project Start
1987-04-01
Project End
1994-11-30
Budget Start
1990-12-01
Budget End
1991-11-30
Support Year
4
Fiscal Year
1991
Total Cost
Indirect Cost
Name
University of Michigan Ann Arbor
Department
Type
Schools of Medicine
DUNS #
791277940
City
Ann Arbor
State
MI
Country
United States
Zip Code
48109
Ennis, Steven R; Keep, Richard F (2007) Effect of sustained-mild and transient-severe hyperglycemia on ischemia-induced blood-brain barrier opening. J Cereb Blood Flow Metab 27:1573-82
Pang, L; Ye, W; Che, X M et al. (2001) Reduction of inflammatory response in the mouse brain with adenoviral-mediated transforming growth factor-ss1 expression. Stroke 32:544-52
Masada, T; Hua, Y; Xi, G et al. (2001) Attenuation of ischemic brain edema and cerebrovascular injury after ischemic preconditioning in the rat. J Cereb Blood Flow Metab 21:22-33
Mao, Y; Yang, G; Zhou, L (2000) Temporary and permanent focal cerebral ischemia in the mouse: assessment of cerebral blood flow, brain damage and blood-brain barrier permeability. Chin Med J (Engl) 113:361-6
Keep, R F; Ulanski 2nd, L J; Xiang, J et al. (1999) Blood-brain barrier mechanisms involved in brain calcium and potassium homeostasis. Brain Res 815:200-5
Keep, R F; Si, X; Shakui, P et al. (1999) Effect of amiloride analogs on DOCA-salt-induced hypertension in rats. Am J Physiol 276:H2215-20
Yang, G Y; Gong, C; Qin, Z et al. (1999) Tumor necrosis factor alpha expression produces increased blood-brain barrier permeability following temporary focal cerebral ischemia in mice. Brain Res Mol Brain Res 69:135-43
Yang, G Y; Schielke, G P; Gong, C et al. (1999) Expression of tumor necrosis factor-alpha and intercellular adhesion molecule-1 after focal cerebral ischemia in interleukin-1beta converting enzyme deficient mice. J Cereb Blood Flow Metab 19:1109-17
Kawai, N; Stummer, W; Ennis, S R et al. (1999) Blood-brain barrier glutamine transport during normoglycemic and hyperglycemic focal cerebral ischemia. J Cereb Blood Flow Metab 19:79-86
Patel, T R; Fujisawa, M; Schielke, G P et al. (1999) Effect of intracerebral and subdural hematomas on energy-dependent transport across the blood-brain barrier. J Neurotrauma 16:1049-55

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