Antioxidant defense of the brain: a role for astrocytes

被引:344
作者
Wilson, JX [1 ]
机构
[1] Univ Western Ontario, Dept Physiol, London, ON N6A 5C1, Canada
关键词
free radicals; neuroprotection; ischemia; glucose; glutathione; ascorbate; gliosis; reactive glia; central nervous system;
D O I
10.1139/cjpp-75-10-11-1149
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Partially reduced forms of oxygen are produced in the brain during cellular respiration and, at accelerated rates, during brain insults. The most reactive forms, such as the hydroxyl radical, are capable of oxidizing proteins, lipids, and nucleic acids. Oxidative injury has been implicated in degenerative diseases, epilepsy, trauma, and stroke. It is a threshold phenomenon that occurs after antioxidant mechanisms are overwhelmed. Oxidative stress is a disparity between the rates of free radical production and elimination. This imbalance is initiated by numerous factors: acidosis; transition metals; amyloid beta-peptide; the neurotransmitters dopamine, glutamate, and nitric oxide; and uncouplers of mitochondrial electron transport. Antioxidant defenses include the enzymes superoxide dismutase, glutathione peroxidase, and catalase, as well as the low molecular weight reductants alpha-tocopherol (vitamin E), glutathione, and ascorbate (reduced vitamin C). Astrocytes maintain high intracellular concentrations of certain antioxidants, making these cells resistant to oxidative stress relative to oligodendrocytes and neurons. Following reactive gliosis, the neuroprotective role of astrocytes may be accentuated because of increases in a number of activities: expression of antioxidant enzymes; transport and metabolism of glucose that yields reducing equivalents for antioxidant regeneration and lactate for neuronal metabolism; synthesis of glutathione; and recycling of vitamin C. In the latter process, astrocytes take up oxidized vitamin C (dehydroascorbic acid, DHAA) through plasma membrane transporters, reduce it to ascorbate, and then release ascorbate to the extracellular fluid, where it may contribute to antioxidant defense of neurons.
引用
收藏
页码:1149 / 1163
页数:15
相关论文
共 211 条
[31]   MDL 74,180 reduces cerebral infarction and free radical concentrations in rats subjected to ischaemia and reperfusion [J].
Cowley, DJ ;
Lukovic, L ;
Petty, MA .
EUROPEAN JOURNAL OF PHARMACOLOGY, 1996, 298 (03) :227-233
[32]   TEMPORALSPATIAL PATTERNS OF EXPRESSION OF METALLOTHIONEIN-I AND METALLOTHIONEIN-III AND OTHER STRESS-RELATED GENES IN RAT-BRAIN AFTER KAINIC ACID-INDUCED SEIZURES [J].
DALTON, T ;
PAZDERNIK, TL ;
WAGNER, J ;
SAMSON, F ;
ANDREWS, GK .
NEUROCHEMISTRY INTERNATIONAL, 1995, 27 (01) :59-71
[33]   A SIMPLE METHOD FOR EVALUATION OF SUPEROXIDE RADICAL PRODUCTION IN NEURAL CELLS UNDER VARIOUS CULTURE CONDITIONS - APPLICATION TO HYPOXIA [J].
DAVAL, JL ;
GHERSIEGEA, JF ;
OILLET, J ;
KOZIEL, V .
JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 1995, 15 (01) :71-77
[34]   NO synthase and xanthine oxidase activities of rabbit brain [J].
Deliconstantinos, G ;
Villiotou, V .
NEUROCHEMICAL RESEARCH, 1996, 21 (01) :51-61
[35]  
Desagher S, 1996, J NEUROSCI, V16, P2553
[36]   Oxidative stress during post-hypoxic-ischemic reperfusion in the newborn lamb: The effect of nitric oxide synthesis inhibition [J].
Dorrepaal, CA ;
vanBel, F ;
Moison, RMW ;
Shadid, M ;
vandeBor, MV ;
Steendijk, P ;
Berger, HM .
PEDIATRIC RESEARCH, 1997, 41 (03) :321-326
[37]   GLYCOGEN IN ASTROCYTES - POSSIBLE FUNCTION AS LACTATE SUPPLY FOR NEIGHBORING CELLS [J].
DRINGEN, R ;
GEBHARDT, R ;
HAMPRECHT, B .
BRAIN RESEARCH, 1993, 623 (02) :208-214
[38]   Very delayed infarction after mild focal cerebral ischemia: A role for apoptosis? [J].
Du, C ;
Hu, R ;
Csernansky, CA ;
Hsu, CY ;
Choi, DW .
JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 1996, 16 (02) :195-201
[39]  
DUGAN LL, 1995, J NEUROSCI, V15, P6377
[40]   COUPLING OF CELLULAR-ENERGY STATE AND ION HOMEOSTASIS DURING RECOVERY FOLLOWING BRAIN ISCHEMIA [J].
EKHOLM, A ;
KATSURA, K ;
KRISTIAN, T ;
LIU, M ;
FOLBERGROVA, J ;
SIESJO, BK .
BRAIN RESEARCH, 1993, 604 (1-2) :185-191