Literature DB >> 2141871

Atrophy of the hypothalamic lateral tuberal nucleus in Huntington's disease.

H P Kremer1, R A Roos, G Dingjan, E Marani, G T Bots.   

Abstract

The hypothalamic lateral tuberal nucleus (NTL) was studied in the formalin-fixed brains of five patients with Huntington's disease (HD) and in five age- and sex-matched controls. With the Klüver-Barrera (luxol fast blue/cresyl violet) and hematoxylin and eosin stains the NTL was defined by its cytoarchitectonic characteristics. The nucleus was composed of one type of neuron and had about 60,000 cells. In HD, up to 90% neuronal loss was found in the NTL. The remaining neurons showed features of degeneration and there was astrocytosis. The estimated total number of glial cells in the NTL was reduced to 80% of the control values, which was exclusively accounted for by a reduction of 40% in the number of oligodendrocytes. The total number of astrocytes was unchanged. Grouping of astrocytes and the changes observed in glial fibrillary acidic protein immunocytochemistry suggested that astrocytic proliferation occurred.

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Year:  1990        PMID: 2141871     DOI: 10.1097/00005072-199007000-00002

Source DB:  PubMed          Journal:  J Neuropathol Exp Neurol        ISSN: 0022-3069            Impact factor:   3.685


  31 in total

1.  Cortical metabolites as biomarkers in the R6/2 model of Huntington's disease.

Authors:  Lori Zacharoff; Ivan Tkac; Qingfeng Song; Chuanning Tang; Patrick J Bolan; Silvia Mangia; Pierre-Gilles Henry; Tongbin Li; Janet M Dubinsky
Journal:  J Cereb Blood Flow Metab       Date:  2011-11-02       Impact factor: 6.200

2.  Dysfunctions in circadian behavior and physiology in mouse models of Huntington's disease.

Authors:  Takashi Kudo; Analyne Schroeder; Dawn H Loh; Dika Kuljis; Maria C Jordan; Kenneth P Roos; Christopher S Colwell
Journal:  Exp Neurol       Date:  2010-12-22       Impact factor: 5.330

Review 3.  Functional Differences Between Direct and Indirect Striatal Output Pathways in Huntington's Disease.

Authors:  Laurie Galvan; Véronique M André; Elizabeth A Wang; Carlos Cepeda; Michael S Levine
Journal:  J Huntingtons Dis       Date:  2012

4.  Changes in the striatal proteome of YAC128Q mice exhibit gene-environment interactions between mutant huntingtin and manganese.

Authors:  Michal Wegrzynowicz; Hunter K Holt; David B Friedman; Aaron B Bowman
Journal:  J Proteome Res       Date:  2012-01-20       Impact factor: 4.466

Review 5.  How vital is sleep in Huntington's disease?

Authors:  Anna O G Goodman; Roger A Barker
Journal:  J Neurol       Date:  2010-03-24       Impact factor: 4.849

6.  Upper gastrointestinal findings in Huntington's disease: patients suffer but do not complain.

Authors:  Jürgen E Andrich; Michael Wobben; Peter Klotz; Oliver Goetze; Carsten Saft
Journal:  J Neural Transm (Vienna)       Date:  2009-09-22       Impact factor: 3.575

Review 7.  Genetic mouse models of Huntington's disease: focus on electrophysiological mechanisms.

Authors:  Carlos Cepeda; Damian M Cummings; Véronique M André; Sandra M Holley; Michael S Levine
Journal:  ASN Neuro       Date:  2010-04-07       Impact factor: 4.146

8.  Identifying sleep disturbances in Huntington's disease using a simple disease-focused questionnaire.

Authors:  Anna O G Goodman; A Jennifer Morton; Roger A Barker
Journal:  PLoS Curr       Date:  2010-10-15

9.  Huntingtin-associated protein 1 regulates exocytosis, vesicle docking, readily releasable pool size and fusion pore stability in mouse chromaffin cells.

Authors:  Kimberly D Mackenzie; Michael D Duffield; Heshan Peiris; Lucy Phillips; Mark P Zanin; Ee Hiok Teo; Xin-Fu Zhou; Damien J Keating
Journal:  J Physiol       Date:  2013-12-23       Impact factor: 5.182

10.  Sleep and circadian dysfunction in neurodegenerative disorders: insights from a mouse model of Huntington's disease.

Authors:  Dika Kuljis; Analyne M Schroeder; Takashi Kudo; Dawn H Loh; David L Willison; Christopher S Colwell
Journal:  Minerva Pneumol       Date:  2012-09
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