Changes of neuronal activity in areas CA1 and CA3 during anoxia and normoxic or hyperoxic reoxygenation in juvenile rat organotypic hippocampal slice cultures

被引:7
作者
Hoffmann, U
Pomper, J
Graulich, J
Zeller, M
Schuchmann, S
Gabriel, S
Maier, RF
Heinemann, U
机构
[1] Inst Neurophysiol, D-10117 Berlin, Germany
[2] Charite Univ Med Berlin, Klin Neonatol, D-13353 Berlin, Germany
关键词
hypoxia; reoxygenation; organotypic hippocampal; slice culture;
D O I
10.1016/j.brainres.2005.11.025
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
In neonates, asphyxia is usually followed by hyperoxic treatment. In order to study whether hyperoxic reoxygenation might cause additional impairment of neuronal function, we subjected organotypic hippocampal slice cultures of juvenile rats (7 DIV, P6-8) to 30 min anoxia followed by 60 min hyperoxic or normoxic reoxygenation (95% or 19% O2, respectively). Spontaneous and evoked field potentials as well as [Ca2+] were recorded in the pyramidal layer of area CA1 or area CA3. In area CA1, 30 min of anoxia led to decline of evoked field potential amplitudes by on average 67% and to profound changes in field potential characteristics and Ca2+ homeostasis which were not related to outcome after reoxygenation. Hyperoxic reoxygenation resulted first in a fast recovery of the field potential amplitude to 82% of the control value and then, in 75% of slice cultures, in a large negative field potential shift accompanied by a prolonged decrease of [Ca2+](o) and loss of excitability outlasting the experiment. Recovery of field potential amplitude under normoxic conditions stayed poor, with a first increase to 51% and a second decrease to 22%. In contrast, field potential amplitude in area CA3 recovered to 80% of the initial amplitude, irrespective of the reoxygenation mode. The selective loss of function during hyperoxic reoxygenation in area CA1 might be a first sign of neuronal injury that we observed 1 h after end of hyperoxic reoxygenation in a previous study. Whether the poor outcome after normoxic reoxygenation would favour long-term recovery remains to be determined. (c) 2005 Elsevier B.V. All rights reserved.
引用
收藏
页码:207 / 215
页数:9
相关论文
共 61 条
[1]  
AbdelHamid KM, 1997, J NEUROSCI, V17, P3538
[2]   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
[3]  
Baram TZ, 2002, PROG BRAIN RES, V135, P365
[4]   Calpain activation and inhibition in organotypic rat hippocampal slice cultures deprived of oxygen and glucose [J].
Brana, C ;
Benham, CD ;
Sundstrom, LE .
EUROPEAN JOURNAL OF NEUROSCIENCE, 1999, 11 (07) :2375-2384
[5]   Inhibition of different pathways influencing Na+ homeostasis protects organotypic hippocampal slice cultures from hypoxic/hypoglycemic injury [J].
Breder, J ;
Sabelhaus, CF ;
Opitz, T ;
Reymann, KG ;
Schröder, UH .
NEUROPHARMACOLOGY, 2000, 39 (10) :1779-1787
[6]   Lactate and glucose as energy substrates during, and after, oxygen deprivation in rat hippocampal acute and cultured slices [J].
Cater, HL ;
Chandratheva, A ;
Benham, CD ;
Morrison, B ;
Sundstrom, LE .
JOURNAL OF NEUROCHEMISTRY, 2003, 87 (06) :1381-1390
[7]   ANOXIA PRODUCES SMALLER CHANGES IN SYNAPTIC TRANSMISSION, MEMBRANE-POTENTIAL, AND INPUT RESISTANCE IN IMMATURE RAT HIPPOCAMPUS [J].
CHERUBINI, E ;
BENARI, Y ;
KRNJEVIC, K .
JOURNAL OF NEUROPHYSIOLOGY, 1989, 62 (04) :882-895
[8]   Development of rat CA1 neurones in acute versus organotypic slices:: role of experience in synaptic morphology and activity [J].
De Simoni, A ;
Griesinger, CB ;
Edwards, FA .
JOURNAL OF PHYSIOLOGY-LONDON, 2003, 550 (01) :135-147
[9]   Cerebral excitatory amino acids and Na+,K+-ATPase activity during resuscitation of severely hypoxic newborn piglets [J].
Feet, BA ;
Gilland, E ;
Groenendaal, F ;
Brun, NC ;
Hellström-Westas, L ;
Hagberg, H ;
Saugstad, OD .
ACTA PAEDIATRICA, 1998, 87 (08) :889-895
[10]   Effects of hypoxemia and reoxygenation with 21% or 100% oxygen in newborn piglets: Extracellular hypoxanthine in cerebral cortex and femoral muscle [J].
Feet, BA ;
Yu, XQ ;
Rootwelt, T ;
Oyasaeter, S ;
Saugstad, OD .
CRITICAL CARE MEDICINE, 1997, 25 (08) :1384-1391