EFFECTS OF THE SODIUM-CHANNEL BLOCKER TETRODOTOXIN (TTX) ON CELLULAR ION HOMEOSTASIS IN RAT-BRAIN SUBJECTED TO COMPLETE ISCHEMIA

被引:75
作者
XIE, YX [1 ]
DENGLER, K [1 ]
ZACHARIAS, E [1 ]
WILFFERT, B [1 ]
TEGTMEIER, F [1 ]
机构
[1] GRUNENTHAL GMBH,D-52078 AACHEN,GERMANY
关键词
CEREBRAL ISCHEMIA; ION HOMEOSTASIS; ANOXIC DEPOLARIZATION; TETRODOTOXIN; SODIUM CHANNEL; ISOLATED PERFUSED RAT BRAIN;
D O I
10.1016/0006-8993(94)90230-5
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Anoxic depolarization (AD) and failure of the cellular ion homeostasis are suggested to play a key role in ischemia-induced neuronal death. Recent studies show that the blockade of Na+ influx significantly improved the neuronal outcome. In the present study, we investigated the effects of 10 mu M tetrodotoxin (TTX) on ischemia-induced disturbances of ion homeostasis in the isolated perfused rat brain. TTX inhibited the spontaneous EEG activity, delayed the ischemia-induced tissue acidification, and significantly postponed the occurrence of AD by 65%. The [Ca2+](e) elevation prior to AD was attenuated from 17.8% to 6% while the increase of the [Na+](e) in this period was enhanced (from 2.9% to 7.3%). These findings implied that the ischemia-induced early cellular sodium load and the corresponding shrinkage of the extracellular space was counteracted by TTX. Our results suggest that the Na+ influx via voltage-dependent channels preceding complete breakdown of ion homeostasis is one major factor leading to cell depolarization. The massive Na+ influx coinciding with AD, however, may be mainly via non-selective cation channels or/and receptor-operated channels. Persistent Na+ influx deteriorates neuronal tissue integrity by favouring Ca2+ influx and edema formation. Blockade of ischemia-induced excessive Na+ influx is, therefore, a promising pharmacological approach for stroke treatment.
引用
收藏
页码:216 / 224
页数:9
相关论文
共 47 条
[1]   EXTRACELLULAR IONS DURING VERATRIDINE-INDUCED NEUROTOXICITY IN HIPPOCAMPAL SLICES - NEUROPROTECTIVE EFFECTS OF FLUNARIZINE AND TETRODOTOXIN [J].
ASHTON, D ;
WILLEMS, R ;
MARRANNES, R ;
JANSSEN, PAJ .
BRAIN RESEARCH, 1990, 528 (02) :212-222
[2]  
BALESTRINO M, 1985, Society for Neuroscience Abstracts, V11, P433
[3]   CHLORPROMAZINE PROTECTS BRAIN-TISSUE IN HYPOXIA BY DELAYING SPREADING DEPRESSION-MEDIATED CALCIUM INFLUX [J].
BALESTRINO, M ;
SOMJEN, GG .
BRAIN RESEARCH, 1986, 385 (02) :219-226
[4]   SPREADING DEPRESSION-LIKE HYPOXIC DEPOLARIZATION IN CA1 AND FASCIA DENTATA OF HIPPOCAMPAL SLICES - RELATIONSHIP TO SELECTIVE VULNERABILITY [J].
BALESTRINO, M ;
AITKEN, PG ;
SOMJEN, GG .
BRAIN RESEARCH, 1989, 497 (01) :102-107
[5]   ACTIVATORS OF ATP-SENSITIVE K+ CHANNELS REDUCE ANOXIC DEPOLARIZATION IN CA3 HIPPOCAMPAL-NEURONS [J].
BENARI, Y ;
KRNJEVIC, K ;
CREPEL, V .
NEUROSCIENCE, 1990, 37 (01) :55-60
[6]   EFFECTS OF CALCIUM ENTRY BLOCKER EMOPAMIL ON POSTISCHEMIC ENERGY-METABOLISM OF THE ISOLATED PERFUSED RAT-BRAIN [J].
BIELENBERG, GW ;
HAUBRUCK, H ;
KRIEGLSTEIN, J .
JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 1987, 7 (04) :489-496
[7]  
BIELENBERG GW, 1989, CEREBRAL ISCHEMIA CA, P274
[8]  
BOCK A, 1993, J NEUROSURG ANESTH, V5, P94
[9]   THE EFFECT OF BLOCKING SODIUM INFLUX ON ANOXIC DAMAGE IN THE RAT HIPPOCAMPAL SLICE [J].
BOENING, JA ;
KASS, IS ;
COTTRELL, JE ;
CHAMBERS, G .
NEUROSCIENCE, 1989, 33 (02) :263-268
[10]   DIE ANOXISCHE TERMINALDEPOLARISATION ALS INDICATOR DER VULNERABILITAT DER GROSSHIRNRINDE BEI ANOXIE UND ISCHAMIE [J].
BURES, J ;
BURESOVA, O .
PFLUGERS ARCHIV FUR DIE GESAMTE PHYSIOLOGIE DES MENSCHEN UND DER TIERE, 1957, 264 (04) :325-334