Literature DB >> 11722611

Resistance to NMDA toxicity correlates with appearance of nuclear inclusions, behavioural deficits and changes in calcium homeostasis in mice transgenic for exon 1 of the huntington gene.

O Hansson1, E Guatteo, N B Mercuri, G Bernardi, X J Li, R F Castilho, P Brundin.   

Abstract

Transgenic Huntington's disease (HD) mice, expressing exon 1 of the human HD gene (lines R6/1 and R6/2), are totally resistant to striatal lesions caused by the NMDA receptor agonist quinolinic acid (QA). Here we show that this resistance develops gradually over time in both R6/1 and R6/2 mice, and that it occurred earlier in R6/2 (CAG-155) than in R6/1 (CAG-115) mice. The development of the resistance coincided with the appearance of nuclear inclusions and with the onset of motor deficits. In the HD mice, hippocampal neurons were also resistant to QA, especially in the CA1 region. Importantly, there was no change in susceptibility to QA in transgenic mice with a normal CAG repeat (CAG-18). R6/1 mice were also resistant to NMDA-, but not to AMPA-induced striatal damage. Interestingly, QA-induced current and calcium influx in striatal R6/2 neurons were not decreased. However, R6/2 neurons had a better capacity to handle cytoplasmic calcium ([Ca2+]c) overload following QA and could avoid [Ca2+]c deregulation and cell lysis. In addition, basal [Ca2+]c levels were increased five-fold in striatal R6/2 neurons. This might cause an adaptation of R6 neurons to excitotoxic stress resulting in an up-regulation of defense mechanisms, including an increased capacity to handle [Ca2+]c overload. However, the increased level of basal [Ca2+]c in the HD mice might also disturb intracellular signalling in striatal neurons and thereby cause neuronal dysfunction and behavioural deficits.

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Year:  2001        PMID: 11722611     DOI: 10.1046/j.0953-816x.2001.01767.x

Source DB:  PubMed          Journal:  Eur J Neurosci        ISSN: 0953-816X            Impact factor:   3.386


  44 in total

1.  Striatal-enriched protein tyrosine phosphatase expression and activity in Huntington's disease: a STEP in the resistance to excitotoxicity.

Authors:  Ana Saavedra; Albert Giralt; Laura Rué; Xavier Xifró; Jian Xu; Zaira Ortega; José J Lucas; Paul J Lombroso; Jordi Alberch; Esther Pérez-Navarro
Journal:  J Neurosci       Date:  2011-06-01       Impact factor: 6.167

2.  Cortical Network Dynamics Is Altered in Mouse Models of Huntington's Disease.

Authors:  Elissa J Donzis; Ana María Estrada-Sánchez; Tim Indersmitten; Katerina Oikonomou; Conny H Tran; Catherine Wang; Shahrzad Latifi; Peyman Golshani; Carlos Cepeda; Michael S Levine
Journal:  Cereb Cortex       Date:  2020-04-14       Impact factor: 5.357

Review 3.  Brain networks in Huntington disease.

Authors:  David Eidelberg; D James Surmeier
Journal:  J Clin Invest       Date:  2011-02-01       Impact factor: 14.808

4.  Age-Dependent Resistance to Excitotoxicity in Htt CAG140 Mice and the Effect of Strain Background.

Authors:  Melissa K Strong; Amber L Southwell; Jennifer M Yonan; Michael R Hayden; Grant R Macgregor; Leslie M Thompson; Oswald Steward
Journal:  J Huntingtons Dis       Date:  2012

Review 5.  Huntington's disease: can mice lead the way to treatment?

Authors:  Zachary R Crook; David Housman
Journal:  Neuron       Date:  2011-02-10       Impact factor: 17.173

6.  Balance in multiple sclerosis: relationship to central brain regions.

Authors:  Richard L Doty; Michael R MacGillivray; Hussam Talab; Isabelle Tourbier; Megan Reish; Sherrie Davis; Jennifer L Cuzzocreo; Neil T Shepard; Dzung L Pham
Journal:  Exp Brain Res       Date:  2018-07-17       Impact factor: 1.972

Review 7.  Huntington's disease and the striatal medium spiny neuron: cell-autonomous and non-cell-autonomous mechanisms of disease.

Authors:  Michelle E Ehrlich
Journal:  Neurotherapeutics       Date:  2012-04       Impact factor: 7.620

8.  The group 2 metabotropic glutamate receptor agonist LY379268 rescues neuronal, neurochemical and motor abnormalities in R6/2 Huntington's disease mice.

Authors:  A Reiner; D C Lafferty; H B Wang; N Del Mar; Y P Deng
Journal:  Neurobiol Dis       Date:  2012-03-27       Impact factor: 5.996

Review 9.  Neuronal Ca(2+) dyshomeostasis in Huntington disease.

Authors:  Marta Giacomello; Juan C Oliveros; Jose R Naranjo; Ernesto Carafoli
Journal:  Prion       Date:  2013-01-01       Impact factor: 3.931

Review 10.  Mitochondrial calcium function and dysfunction in the central nervous system.

Authors:  David G Nicholls
Journal:  Biochim Biophys Acta       Date:  2009-03-17
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