Protective effect of high glucose against ischemia-induced synaptic transmission damage in rat hippocampal slices

被引:10
作者
Tian, GF
Baker, AJ
机构
[1] Univ Toronto, St Michaels Hosp, Cara Phelan Trauma Res, Traumat Brain Injury Lab, Toronto, ON M5B 1W8, Canada
[2] Univ Toronto, St Michaels Hosp, Dept Anaesthesia, Toronto, ON M5B 1W8, Canada
关键词
D O I
10.1152/jn.00572.2001
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Cerebral ischemic damage is an important cause of morbidity and mortality. However, there is conflicting evidence regarding the effect of the extracellular glucose concentration in focal and global ischemic injury. This study was designed to investigate this effect in ischemia-induced synaptic transmission damage in rat hippocampal slices. Slices were superfused with artificial cerebrospinal fluid (ACSF) containing various concentrations of glucose before and after ischemia. The evoked somatic postsynaptic population spike (PS) and dendritic field excitatory postsynaptic potential (fEPSP) were extracellularly recorded in the CA1 stratum pyramidal cell layer and s. radiatum after stimulation of the Schaeffer collaterals, respectively. The glucose concentration in ACSF before and after ischemia determined the duration of ischemia tolerated by synaptic transmission as demonstrated by complete recovery of the somatic PS and dendritic fEPSP. Specifically, the somatic PS and dendritic fEPSP completely recovered following 3, 4, and 5 min of ischemia only when slices were superfused with ACSF containing 4, 10, and 20 mM glucose before and after ischemia, respectively. The latencies of the somatic and dendritic ischemic depolarization (ID) occurrence in the CA1 s. pyramidal cell layer and s. radiatum were significantly longer with 10 than 4 mM glucose in ACSF before ischemia and significantly longer with 20 than 10 mM glucose in ACSF before ischemia. Regardless of the glucose concentration in ACSF before and after ischemia, the somatic PS and dendritic fEPSP only partially recovered when ischemia was terminated at the occurrence of ID. These results indicate that high glucose in ACSF during the period before and after ischemia significantly protects CA1 synaptic transmission against in vitro ischemia-induced damage through postponing the occurrence of ID.
引用
收藏
页码:236 / 248
页数:13
相关论文
共 60 条
[51]   Na+/Ca2+ exchanger activity induces a slow DC potential after in vitro ischemia in rat hippocampal CA1 region [J].
Uchikado, H ;
Tanaka, E ;
Yamamoto, S ;
Isagai, T ;
Shigemori, M ;
Higashi, H .
NEUROSCIENCE RESEARCH, 2000, 36 (02) :129-140
[52]   The effect of hyperglycemia on cerebral metabolism during hypoxia-ischemia in the immature rat [J].
Vannucci, RC ;
Brucklacher, RM ;
Vannucci, SJ .
JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 1996, 16 (05) :1026-1033
[53]   METABOLISM OF GLUCOSE, GLYCOGEN, AND HIGH-ENERGY PHOSPHATES DURING COMPLETE CEREBRAL-ISCHEMIA - A COMPARISON OF NORMOGLYCEMIC, CHRONICALLY HYPERGLYCEMIC DIABETIC, AND ACUTELY HYPERGLYCEMIC NONDIABETIC RATS [J].
WAGNER, SR ;
LANIER, WL .
ANESTHESIOLOGY, 1994, 81 (06) :1516-1526
[54]   Differential fall in ATP accounts for effects of temperature on hypoxic damage in rat hippocampal slices [J].
Wang, J ;
Chambers, G ;
Cottrell, JE ;
Kass, IS .
JOURNAL OF NEUROPHYSIOLOGY, 2000, 83 (06) :3462-3472
[55]  
Wass CT, 1996, MAYO CLIN PROC, V71, P801
[56]   PHENYTOIN DELAYS ISCHEMIC DEPOLARIZATION, BUT CANNOT BLOCK ITS LONG-TERM CONSEQUENCES, IN THE RAT HIPPOCAMPAL SLICE [J].
WATSON, GB ;
LANTHORN, TH .
NEUROPHARMACOLOGY, 1995, 34 (05) :553-558
[57]   HYPERGLYCEMIA DECREASES ACUTE NEURONAL ISCHEMIC CHANGES AFTER MIDDLE CEREBRAL-ARTERY OCCLUSION IN CATS [J].
ZASSLOW, MA ;
PEARL, RG ;
SHUER, LM ;
STEINBERG, GK ;
LIEBERSON, RE ;
LARSON, CP .
STROKE, 1989, 20 (04) :519-523
[58]   Reversible attenuation of glutamatergic transmission in hippocampal CA1 neurons of rat brain slices following transient cerebral ischemia [J].
Zhang, L ;
Zhang, Y ;
Tian, GF ;
Wallace, MC ;
Eubanks, JH .
BRAIN RESEARCH, 1999, 832 (1-2) :31-39
[59]  
Zhang YL, 1999, J NEUROSCI, V19, P3307
[60]   Persistent block of CA1 synaptic function by prolonged hypoxia [J].
Zhu, PJ ;
Krnjevic, K .
NEUROSCIENCE, 1999, 90 (03) :759-770