Calcium CaV1 Channel Subtype mRNA Expression in Parkinson's Disease Examined by In Situ Hybridization
File(s)Hurley_JMN_revised.pdf (1.08 MB)
Accepted version
Author(s)
Hurley, MJ
Gentleman, SM
Dexter, DT
Type
Journal Article
Abstract
The factors which make some neurons vulnerable to neurodegeneration in Parkinson's disease while others remain resistant are not fully understood. Studies in animal models of Parkinson's disease suggest that preferential use of CaV1.3 subtypes by neurons may contribute to the neurodegenerative process by increasing mitochondrial oxidant stress. This study quantified the level of mRNA for the CaV1 subtypes found in the brain by in situ hybridization using CaV1 subtype-specific [35S]-radiolabelled oligonucleotide probes. In normal brain, the greatest amount of messenger RNA (mRNA) for each CaV1 subtype was found in the midbrain (substantia nigra), with a moderate level in the pons (locus coeruleus) and lower quantities in cerebral cortex (cingulate and primary motor). In Parkinson's disease, the level of CaV1 subtype mRNA was maintained in the midbrain and pons, despite cell loss in these areas. In cingulate cortex, CaV1.2 and CaV1.3 mRNA increased in cases with late-stage Parkinson's disease. In primary motor cortex, the level of CaV1.2 mRNA increased in late-stage Parkinson's disease. The level of CaV1.3 mRNA increased in primary motor cortex of cases with early-stage Parkinson's disease and normalized to near the control level in cases from late-stage Parkinson's disease. The finding of elevated CaV1 subtype expression in cortical brain regions supports the view that disturbed calcium homeostasis is a feature of Parkinson's disease throughout brain and not only a compensatory consequence to the neurodegenerative process in areas of cell loss. © 2014 Springer Science+Business Media New York.
Date Issued
2015-03-02
Citation
Journal of Molecular Neuroscience, 2015, 55 (3), pp.715-724
ISSN
0895-8696
Start Page
715
End Page
724
Journal / Book Title
Journal of Molecular Neuroscience
Volume
55
Issue
3
Copyright Statement
© Springer Science+Business Media New York 2014. The original publication is available at www.springerlink.com
Description
18.03.15 KB. Ok to add accepted version to spiral, subject to 12 months embargo
Identifier
http://www.ncbi.nlm.nih.gov/pubmed/25173401
Subjects
Brain
Calcium channel
Dihydropyridines
In situ hybridization
Parkinson's disease
Publication Status
Accepted