Literature DB >> 15221335

Extracellular protein deposition correlates with glial activation and oxidative stress in Creutzfeldt-Jakob and Alzheimer's disease.

Bart Van Everbroeck1, Itte Dobbeleir, Michèle De Waele, Evelyn De Leenheir, Ursula Lübke, Jean-Jacques Martin, Patrick Cras.   

Abstract

The relation of protein deposition with glial cells and oxidative stress was studied in Creutzfeldt-Jakob disease (CJD), Alzheimer's disease (AD) and neurologically healthy control patients. Three neocortical areas, the hippocampus, and the cerebellum of 20 CJD, 10 AD and 10 control patients were immunohistochemically examined for the presence of astroglia, microglia, and protein depositions. To investigate the level of oxidative stress the percentage of neurons with cytoplasmic hydroxylated DNA was determined. Astroglia, microglia and oxidative stress were located around amyloid-beta depositions and a clear quantitative relation was identified. These markers were only increased in the hippocampus of AD compared to controls. Quantitative analysis in these groups showed a correlation between the oxidative stress level and the number of microglia in the grey matter. All markers were increased in the grey matter and the cerebellum of CJD when compared to AD and controls. The highest numbers of lesions were observed in a CJD population with a rapid disease progression. Quantitative analysis showed a correlation between the oxidative stress level and all glial cells. Further analysis showed that the number of microglia was related to the intensity of the prion depositions. Glial cells in the brain are thought to be the main producers of oxidative stress, resulting in neuronal death. Our results confirm that this close relationship exists in both AD and CJD. We also show that an increased number of glial cells and therefore possibly oxidative stress is associated with the disease progression.

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Year:  2004        PMID: 15221335     DOI: 10.1007/s00401-004-0879-2

Source DB:  PubMed          Journal:  Acta Neuropathol        ISSN: 0001-6322            Impact factor:   17.088


  22 in total

1.  Region-specific glial homeostatic signature in prion diseases is replaced by a uniform neuroinflammation signature, common for brain regions and prion strains with different cell tropism.

Authors:  Natallia Makarava; Jennifer Chen-Yu Chang; Kara Molesworth; Ilia V Baskakov
Journal:  Neurobiol Dis       Date:  2020-01-27       Impact factor: 5.996

2.  Posttranslational modifications define course of prion strain adaptation and disease phenotype.

Authors:  Natallia Makarava; Jennifer Chen-Yu Chang; Kara Molesworth; Ilia V Baskakov
Journal:  J Clin Invest       Date:  2020-08-03       Impact factor: 14.808

3.  Orally administered prion protein is incorporated by m cells and spreads into lymphoid tissues with macrophages in prion protein knockout mice.

Authors:  Ikuro Takakura; Kohtaro Miyazawa; Takashi Kanaya; Wataru Itani; Kouichi Watanabe; Shyuichi Ohwada; Hitoshi Watanabe; Tetsuya Hondo; Michael T Rose; Tsuyoshi Mori; Suehiro Sakaguchi; Noriyuki Nishida; Shigeru Katamine; Takahiro Yamaguchi; Hisashi Aso
Journal:  Am J Pathol       Date:  2011-07-18       Impact factor: 4.307

4.  Evaluation of prion deposits and microglial activation in scrapie-infected mice using molecular imaging probes.

Authors:  Pu-Jiao Song; Céline Barc; Nicolas Arlicot; Denis Guilloteau; Serge Bernard; Pierre Sarradin; Sylvie Chalon; Lucette Garreau; Hank F Kung; Frédéric Lantier; Jackie Vergote
Journal:  Mol Imaging Biol       Date:  2010-12       Impact factor: 3.488

5.  Different Molecular Mechanisms Mediate Direct or Glia-Dependent Prion Protein Fragment 90-231 Neurotoxic Effects in Cerebellar Granule Neurons.

Authors:  Stefano Thellung; Elena Gatta; Francesca Pellistri; Valentina Villa; Alessandro Corsaro; Mario Nizzari; Mauro Robello; Tullio Florio
Journal:  Neurotox Res       Date:  2017-05-25       Impact factor: 3.911

6.  Role of cyclophilin A from brains of prion-infected mice in stimulation of cytokine release by microglia and astroglia in vitro.

Authors:  Déborah Tribouillard-Tanvier; James A Carroll; Roger A Moore; James F Striebel; Bruce Chesebro
Journal:  J Biol Chem       Date:  2011-12-16       Impact factor: 5.157

Review 7.  Therapeutic strategies for identifying small molecules against prion diseases.

Authors:  Elisa Uliassi; Lea Nikolic; Maria Laura Bolognesi; Giuseppe Legname
Journal:  Cell Tissue Res       Date:  2022-01-06       Impact factor: 5.249

8.  Kolaviron was protective against sodium azide (NaN3) induced oxidative stress in the prefrontal cortex.

Authors:  Olayemi J Olajide; Bernard U Enaibe; Oluwamolakun O Bankole; Oluwole B Akinola; Babafemi J Laoye; Olalekan M Ogundele
Journal:  Metab Brain Dis       Date:  2015-04-29       Impact factor: 3.584

9.  Analysis of protein levels of 24 cytokines in scrapie agent-infected brain and glial cell cultures from mice differing in prion protein expression levels.

Authors:  Déborah Tribouillard-Tanvier; James F Striebel; Karin E Peterson; Bruce Chesebro
Journal:  J Virol       Date:  2009-08-26       Impact factor: 5.103

10.  Human PrP90-231-induced cell death is associated with intracellular accumulation of insoluble and protease-resistant macroaggregates and lysosomal dysfunction.

Authors:  S Thellung; A Corsaro; V Villa; A Simi; S Vella; A Pagano; T Florio
Journal:  Cell Death Dis       Date:  2011-03-31       Impact factor: 8.469

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