共 41 条
[11]
Danielisova V., Nemethova M., Gottlieb M., Burda J., Changes of endogenous antioxidant enzymes during ischemic tolerance acquisition, Neurochem. Res., 30, pp. 559-565, (2005)
[12]
Dooley P., Corbett D., Competing processes of cell death and recovery of function following ischemic preconditioning, Brain Res., 794, pp. 119-126, (1998)
[13]
Fugita H., Sato K., Wen T.C., Peng Y., Sakanaka M., Differential expression of glycine transporter 1 and three glutamate transporter mRNA in the hippocampus of gerbils with transient forebrain ischemia, J. Cereb. Blood Flow Metab., 19, pp. 604-615, (1999)
[14]
Fujimura M., Morita-Fujimura Y., Narasimhan P., Copin J.C., Kawase M., Copper-zinc superoxide dismutase prevents the early decrease of apurinic/apyrimidine endonuclease and subsequent DNA fragmentation after transient focal cerebral ischemia in mice, Stroke, 30, pp. 2408-2415, (1999)
[15]
Fujimura M., Morita-Fujimura Y., Noshita N., Sugawara T., Kawase M., The cytosolic antioxidant copper/zinc-superoxide dismutase prevents the early release of mitochondrial cytochrome c in ischemic brain after transient focal cerebral ischemia in mice, J. Neurosci., 20, pp. 2817-2824, (2000)
[16]
Goth L.A., A simple method for determination of serum catalase activity, and revision of reference range, Clin. Chim. Acta, 196, pp. 143-152, (1991)
[17]
Greenwald R.A., Superoxide dismutase and catalase as therapeutic agents for human diseases. A critical review, Free Radic. Biol. Med., 8, pp. 201-209, (1990)
[18]
Halliwell B., Reactive oxygen species and the central nervous system, J. Neurochem., 59, pp. 1609-1623, (1992)
[19]
Imai H., Graham D.I., Masayasu H., Macrae I.M., Antioxidant ebselen reduces oxidative damage in focal cerebral ischemia, Free Radic. Biol. Med., 34, pp. 56-63, (2003)
[20]
Kirino T., Tsujita Y., Tamura A., Induced tolerance to ischemia in gerbil hippocampal neurons, J. Cereb. Blood Flow Metab., 2, pp. 299-307, (1991)