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Astrocyte-Dependent Vulnerability to Excitotoxicity in Spermine Oxidase-Overexpressing Mouse
Authors:Chiara Cervetto  Laura Vergani  Mario Passalacqua  Milena Ragazzoni  Arianna Venturini  Francesco Cecconi  Nicola Berretta  Nicola Mercuri  Marcello D’Amelio  Guido Maura  Paolo Mariottini  Adriana Voci  Manuela Marcoli  Manuela Cervelli
Institution:1.Section of Pharmacology and Toxicology, Department of Pharmacy,University of Genova,Genoa,Italy;2.Center of Excellence for Biomedical Research,University of Genova,Genoa,Italy;3.Department of Earth, Environment and Life Sciences (DISTAV),University of Genova,Genoa,Italy;4.Department of Experimental Medicine,University of Genova,Genoa,Italy;5.Department of Biology,University of Rome ‘Tor Vergata’,Rome,Italy;6.Department of Experimental Neurosciences,IRCCS Fondazione Santa Lucia,Rome,Italy;7.Unit of Cell Stress and Survival,Danish Cancer Society Research Center,Copenhagen,Denmark;8.Department of Systems Medicine,University of Rome ‘Tor Vergata’,Rome,Italy;9.Medical School Campus,Bio-Medico University of Rome,Rome,Italy;10.Department of Sciences,University of Rome “Roma Tre”,Rome,Italy;11.Interuniversity Consortium of Structural and Systems Biology,Rome,Italy
Abstract:Transgenic mice overexpressing spermine oxidase (SMO) in the cerebral cortex (Dach-SMO mice) showed increased vulnerability to excitotoxic brain injury and kainate-induced epileptic seizures. To investigate the mechanisms by which SMO overexpression leads to increased susceptibility to kainate excitotoxicity and seizure, in the cerebral cortex of Dach-SMO and control mice we assessed markers for astrocyte proliferation and neuron loss, and the ability of kainate to evoke glutamate release from nerve terminals and astrocyte processes. Moreover, we assessed a possible role of astrocytes in an in vitro model of epileptic-like activity in combined cortico-hippocampal slices recorded with a multi-electrode array device. In parallel, as the brain is a major metabolizer of oxygen and yet has relatively feeble protective antioxidant mechanisms, we analyzed the oxidative status of the cerebral cortex of both SMO-overexpressing and control mice by evaluating enzymatic and non-enzymatic scavengers such as metallothioneins. The main findings in the cerebral cortex of Dach-SMO mice as compared to controls are the following: astrocyte activation and neuron loss; increased oxidative stress and activation of defense mechanisms involving both neurons and astrocytes; increased susceptibility to kainate-evoked cortical epileptogenic activity, dependent on astrocyte function; appearance of a glutamate-releasing response to kainate from astrocyte processes due to activation of Ca2+-permeable AMPA receptors in Dach-SMO mice. We conclude that reactive astrocytosis and activation of glutamate release from astrocyte processes might contribute, together with increased reactive oxygen species production, to the vulnerability to kainate excitotoxicity in Dach-SMO mice. This mouse model with a deregulated polyamine metabolism would shed light on roles for astrocytes in increasing vulnerability to excitotoxic neuron injury.
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