The long-term objective of the research plan is to elucidate mechanisms of neuronal cell damage in the brain in conditions which are associated with a reduced cerebral supply of oxygen or glucose, or with pathologically enhanced neuronal activity and, thereby, to provide basic knowledge furthering rational clinical therapy of stroke, insulin shock, and epilepsy. To that end, such mechanisms are studied in well-controlled animal models of ischemia, hypoglycemia, and status epilepticus, models that allow long-term recovery and assessment of the density and distribution of the final cell damage incurred. These three conditions are studied since each of them has some unique features which, when studied singly or in combination, offer unique opportunities to dissect mechanisms of cell death. The projects are based on the working hypotheses that a disturbed cellular Ca2+ homeostasis forms a common mechanism of damage, that the density of energy failure determines the damage incurred by ischemia and hypoglycemia, and that acidosis is an important determinant of ischemic and epileptic brain damage. The research projects have the following three specific aims: (1) To determine the relationship between the remaining energy source and the density of cell damage incurred, (2) to assess the modulating influence of cellular acidosis (ischemia and status epilepticus) and alkalosis (hypoglycemia), and (3) to study the importance of Ca2+ triggered events, particularly lypolysis with accumulation of free fatty acids, proteolysis, and free radical formation. In addition, the problem of selective neuronal vulnerability is approached by lesioning experiments that may help to define functional connections which modulate the impact of ischemic, hypoclycemic, and epileptic insults.

Agency
National Institute of Health (NIH)
Institute
National Institute of Neurological Disorders and Stroke (NINDS)
Type
Research Project (R01)
Project #
5R01NS007838-17
Application #
3393667
Study Section
Neurology B Subcommittee 1 (NEUB)
Project Start
1978-07-01
Project End
1987-06-30
Budget Start
1985-07-01
Budget End
1986-06-30
Support Year
17
Fiscal Year
1985
Total Cost
Indirect Cost
Name
Lund University
Department
Type
DUNS #
350582417
City
Lund
State
Country
Sweden
Zip Code
SE-2210
Yoshimoto, Tetsuyuki; Kanakaraj, Palanisamy; Ying Ma, Jing et al. (2002) NXY-059 maintains Akt activation and inhibits release of cytochrome C after focal cerebral ischemia. Brain Res 947:191-8
Yoshimoto, Tetsuyuki; Kristian, Tibor; Hu, Bingren et al. (2002) Effect of NXY-059 on secondary mitochondrial dysfunction after transient focal ischemia; comparison with cyclosporin A. Brain Res 932:99-109
Janelidze, S; Hu, B R; Siesjo, P et al. (2001) Alterations of Akt1 (PKBalpha) and p70(S6K) in transient focal ischemia. Neurobiol Dis 8:147-54
Yoshimoto, T; Uchino, H; He, Q P et al. (2001) Cyclosporin A, but not FK506, prevents the downregulation of phosphorylated Akt after transient focal ischemia in the rat. Brain Res 899:148-58
Kristian, T; Bernardi, P; Siesjo, B K (2001) Acidosis promotes the permeability transition in energized mitochondria: implications for reperfusion injury. J Neurotrauma 18:1059-74
Ouyang, Y B; He, Q P; Li, P A et al. (2000) Is neuronal injury caused by hypoglycemic coma of the necrotic or apoptotic type? Neurochem Res 25:661-7
Kristian, T; Gertsch, J; Bates, T E et al. (2000) Characteristics of the calcium-triggered mitochondrial permeability transition in nonsynaptic brain mitochondria: effect of cyclosporin A and ubiquinone O. J Neurochem 74:1999-2009
Kuroda, S; Janelidze, S; Siesjo, B K (1999) The immunosuppressants cyclosporin A and FK506 equally ameliorate brain damage due to 30-min middle cerebral artery occlusion in hyperglycemic rats. Brain Res 835:148-53
Kuroda, S; Tsuchidate, R; Smith, M L et al. (1999) Neuroprotective effects of a novel nitrone, NXY-059, after transient focal cerebral ischemia in the rat. J Cereb Blood Flow Metab 19:778-87
Yoshimoto, T; Siesjo, B K (1999) Posttreatment with the immunosuppressant cyclosporin A in transient focal ischemia. Brain Res 839:283-91

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