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RESEARCH PRODUCT
Oxygen and glucose deprivation induces major dysfunction in the somatosensory cortex of the newborn rat
Nicolas HeckJ. AlbrechtIleana L. HanganuHeiko J. Luhmannsubject
medicine.medical_specialtyPatch-Clamp TechniquesTolbutamideIn Vitro TechniquesBiologySomatosensory systemMembrane PotentialsInternal medicineSubplatemedicineExtracellularAnimalsHypoglycemic AgentsMagnesiumEnzyme InhibitorsHypoxiaOuabainNeuronsMembrane potentialCaspase 3General NeuroscienceDose-Response Relationship RadiationDepolarizationSomatosensory CortexHyperpolarization (biology)ImmunohistochemistryElectric StimulationRatsGlucoseNeuroprotective AgentsEndocrinologymedicine.anatomical_structureAnimals Newbornnervous systemApoptosisCaspasesNMDA receptorDizocilpine Maleatedescription
The mechanisms and functional consequences of ischemia-induced injury during perinatal development are poorly understood. Subplate neurons (SPn) play a central role in early cortical development and a pathophysiological impairment of these neurons may have long-term detrimental effects on cortical function. The acute and long-term consequences of combined oxygen and glucose deprivation (OGD) were investigated in SPn and compared with OGD-induced dysfunction of immature layer V pyramidal cortical neurons (PCn) in somatosensory cortical slices from postnatal day (P)0-4 rats. OGD for 50 min followed by a 10-24-h period of normal oxygenation and glucose supply in vitro or in culture led to pronounced caspase-3-dependent apoptotic cell death in all cortical layers. Whole-cell patch-clamp recordings revealed that the majority of SPn and PCn responded to OGD with an initial long-lasting ischemic hyperpolarization accompanied by a decrease in input resistance (R(in)), followed by an ischemic depolarization (ID). Upon reoxygenation and glucose supply, the recovery of the membrane potential and R(in) was followed by a Na+/K+-ATPase-dependent postischemic hyperpolarization, and in almost half of the investigated SPn and PCn by a postischemic depolarization. Whereas neither a moderate (2.5 mm) nor a high (4.8 mm) increase in extracellular magnesium concentration protected the SPn from OGD-induced dysfunction, blockade of NMDA receptors with MK-801 led to a significant delay and decrease of the ID. Our data demonstrate that OGD induces apoptosis and a profound dysfunction in SPn and PCn, and underline the critical role of NMDA receptors in early ischemia-induced neuronal damage.
year | journal | country | edition | language |
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2005-11-03 | European Journal of Neuroscience |