Two-Photon Imaging of Stroke OnsetIn VivoReveals That NMDA-Receptor Independent Ischemic Depolarization Is the Major Cause of Rapid Reversible Damage to Dendrites and Spines
Open Access
- 13 February 2008
- journal article
- Published by Society for Neuroscience in Journal of Neuroscience
- Vol. 28 (7) , 1756-1772
- https://doi.org/10.1523/jneurosci.5128-07.2008
Abstract
We adapt a mouse global ischemia model to permit rapid induction of ischemia and reperfusion in conjunction with two-photon imaging to monitor the initial ionic, structural, and functional implications of brief interruptions of blood flow (6–8 min)in vivo. After only 2–3 min of global ischemia, a wide spread loss of mouse somatosensory cortex apical dendritic structure is initiated during the passage of a propagating wave (3.3 mm/min) of ischemic depolarization. Increases in intracellular calcium levels occurred during the wave of ischemic depolarization and were coincident with the loss of dendritic structure, but were not triggered by reperfusion. To assess the role of NMDA receptors, we locally applied the antagonist MK-801 [(+)-5-methyl-10,11-dihydro-5H-dibenzo[a,d]cyclohepten-5,10-imine maleate] at concentrations sufficient to fully block local NMDA agonist-evoked changes in intracellular calcium levelsin vivo. Changes in dendritic structure and intracellular calcium levels were independent of NMDA receptor activation. Local application of the non-NMDA glutamate receptor antagonist CNQX also failed to block ischemic depolarization or rapid changes in dendrite structure. Within 3–5 min of reperfusion, damage ceased and restoration of synaptic structure occurred over 10–60 min. In contrast to a reperfusion promoting damage, over this time scale, the majority of spines and dendrites regained their original structure during reperfusion. Intrinsic optical signal imaging of sensory evoked maps indicated that reversible alteration in dendritic structure during reperfusion was accompanied by restored functional maps. Our results identify glutamate receptor-independent ischemic depolarization as the major ionic event associated with disruption of synaptic structure during the first few minutes of ischemiain vivo.Keywords
This publication has 91 references indexed in Scilit:
- Imaging the Impact of Cortical Microcirculation on Synaptic Structure and Sensory-Evoked Hemodynamic Responses In VivoPLoS Biology, 2007
- Calcium-dependent NMDA-induced dendritic injury and MAP2 loss in acute hippocampal slicesNeuroscience, 2007
- Cerebral preconditioning and ischaemic toleranceNature Reviews Neuroscience, 2006
- Two-Photon Imaging of Cortical Surface Microvessels Reveals a Robust Redistribution in Blood Flow after Vascular OcclusionPLoS Biology, 2006
- Imaging input and output of neocortical networks in vivoProceedings of the National Academy of Sciences, 2005
- Sulforhodamine 101 as a specific marker of astroglia in the neocortex in vivoNature Methods, 2004
- High Speed Diffusion Magnetic Resonance Imaging of Ischemia and Spontaneous Periinfarct Spreading Depression after Thromboembolic Stroke in the RatJournal of Cerebral Blood Flow & Metabolism, 2000
- Potential Sources of Intrinsic Optical Signals Imaged in Live Brain SlicesMethods, 1999
- Repeated Negative DC Deflections in Rat Cortex following Middle Cerebral Artery Occlusion are Abolished by MK-801: Effect on Volume of Ischemic InjuryJournal of Cerebral Blood Flow & Metabolism, 1992
- Blockade of the AMPA receptor prevents CA1 hippocampal injury following severe but transient forebrain ischemia in adult ratsNeuroscience Letters, 1991