Literature DB >> 10732998

Quantitative immunochemistry on neuronal loss, reactive gliosis and BBB damage in cortex/striatum and hippocampus/amygdala after systemic kainic acid administration.

M Ding1, K G Haglid, A Hamberger.   

Abstract

Cell specific markers were quantified in the hippocampus, the amygdala/pyriform cortex, the frontal cerebral cortex and the striatum of the rat brain after systemic administration of kainic acid. Neuron specific enolase (NSE) reflects loss of neurons, glial fibrillary acidic protein (GFAP) reflects reactive gliosis, and brain levels of serum proteins measures blood-brain-barrier permeability. While the concentration of NSE remained unaffected in the frontal cerebral cortex and the striatum, their GFAP content increased during the first three days. In the hippocampus and amygdala, NSE levels decreased significantly. GFAP levels in the hippocampus were unaffected after one day and decreased in the amygdala/pyriform cortex. After that, GFAP increased strikingly until day 9 or, in the case of amygdala/pyriform cortex, even longer. This biphasic time course for GFAP was accompanied by a decrease of S-100 during days 1-9 followed by a significant increase at day 27 above the initial level. The regional differences in GFAP and S-100 could result from the degree of neuronal degeneration, the astrocytic receptor set-up and/or effects on the blood-brain barrier.

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Year:  2000        PMID: 10732998     DOI: 10.1016/s0197-0186(99)00139-4

Source DB:  PubMed          Journal:  Neurochem Int        ISSN: 0197-0186            Impact factor:   3.921


  16 in total

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2.  Construction and implantation of a microinfusion system for sustained delivery of neuroactive agents.

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4.  Pirfenidone Attenuates Microglial Reactivity and Reduces Inducible Nitric Oxide Synthase mRNA Expression After Kainic Acid-Mediated Excitotoxicity in Pubescent Rat Hippocampus.

Authors:  Rubén Darío Castro-Torres; Verónica Chaparro-Huerta; Mario Eduardo Flores-Soto; Luis Jave-Suárez; Antoni Camins; Juan Armendáriz-Borunda; Carlos Beas-Zárate; Salvador Mena-Munguía
Journal:  J Mol Neurosci       Date:  2015-02-18       Impact factor: 3.444

5.  Magnetic resonance spectroscopy of current hand amputees reveals evidence for neuronal-level changes in former sensorimotor cortex.

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6.  Transcriptome analysis of the hippocampal CA1 pyramidal cell region after kainic acid-induced status epilepticus in juvenile rats.

Authors:  Hanna B Laurén; Francisco R Lopez-Picon; Annika M Brandt; Clarissa J Rios-Rojas; Irma E Holopainen
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7.  Peripheral markers of brain damage and blood-brain barrier dysfunction.

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Review 8.  Kainic acid-induced neurodegenerative model: potentials and limitations.

Authors:  Xiang-Yu Zheng; Hong-Liang Zhang; Qi Luo; Jie Zhu
Journal:  J Biomed Biotechnol       Date:  2010-11-24

9.  Kainic Acid-induced neurotoxicity: targeting glial responses and glia-derived cytokines.

Authors:  Xing-Mei Zhang; Jie Zhu
Journal:  Curr Neuropharmacol       Date:  2011-06       Impact factor: 7.363

10.  Concussion susceptibility is mediated by spreading depolarization-induced neurovascular dysfunction.

Authors:  Ellen Parker; Refat Aboghazleh; Griffin Mumby; Ronel Veksler; Jonathan Ofer; Jillian Newton; Rylan Smith; Lyna Kamintsky; Casey M A Jones; Eoin O'Keeffe; Eoin Kelly; Klara Doelle; Isabelle Roach; Lynn T Yang; Pooyan Moradi; Jessica M Lin; Allison J Gleason; Christina Atkinson; Chris Bowen; Kimberly D Brewer; Colin P Doherty; Matthew Campbell; David B Clarke; Gerben van Hameren; Daniela Kaufer; Alon Friedman
Journal:  Brain       Date:  2022-06-30       Impact factor: 15.255

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