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Gene expression signatures in motor neurone disease fibroblasts reveal dysregulation of metabolism, hypoxia-response and RNA processing functions

AIMS: Amyotrophic lateral sclerosis (ALS) and primary lateral sclerosis (PLS) are two syndromic variants within the motor neurone disease spectrum. As PLS and most ALS cases are sporadic (SALS), this limits the availability of cellular models for investigating pathogenic mechanisms and therapeutic t...

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Autores principales: Raman, R, Allen, S P, Goodall, E F, Kramer, S, Ponger, L-L, Heath, P R, Milo, M, Hollinger, H C, Walsh, T, Highley, J R, Olpin, S, McDermott, C J, Shaw, P J, Kirby, J
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BlackWell Publishing Ltd 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4329387/
https://www.ncbi.nlm.nih.gov/pubmed/24750211
http://dx.doi.org/10.1111/nan.12147
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author Raman, R
Allen, S P
Goodall, E F
Kramer, S
Ponger, L-L
Heath, P R
Milo, M
Hollinger, H C
Walsh, T
Highley, J R
Olpin, S
McDermott, C J
Shaw, P J
Kirby, J
author_facet Raman, R
Allen, S P
Goodall, E F
Kramer, S
Ponger, L-L
Heath, P R
Milo, M
Hollinger, H C
Walsh, T
Highley, J R
Olpin, S
McDermott, C J
Shaw, P J
Kirby, J
author_sort Raman, R
collection PubMed
description AIMS: Amyotrophic lateral sclerosis (ALS) and primary lateral sclerosis (PLS) are two syndromic variants within the motor neurone disease spectrum. As PLS and most ALS cases are sporadic (SALS), this limits the availability of cellular models for investigating pathogenic mechanisms and therapeutic targets. The aim of this study was to use gene expression profiling to evaluate fibroblasts as cellular models for SALS and PLS, to establish whether dysregulated biological processes recapitulate those seen in the central nervous system and to elucidate pathways that distinguish the clinically defined variants of SALS and PLS. METHODS: Microarray analysis was performed on fibroblast RNA and differentially expressed genes identified. Genes in enriched biological pathways were validated by quantitative PCR and functional assays performed to establish the effect of altered RNA levels on the cellular processes. RESULTS: Gene expression profiling demonstrated that whilst there were many differentially expressed genes in common between SALS and PLS fibroblasts, there were many more expressed specifically in the SALS fibroblasts, including those involved in RNA processing and the stress response. Functional analysis of the fibroblasts confirmed a significant decrease in miRNA production and a reduced response to hypoxia in SALS fibroblasts. Furthermore, metabolic gene changes seen in SALS, many of which were also evident in PLS fibroblasts, resulted in dysfunctional cellular respiration. CONCLUSIONS: The data demonstrate that fibroblasts can act as cellular models for ALS and PLS, by establishing the transcriptional changes in known pathogenic pathways that confer subsequent functional effects and potentially highlight targets for therapeutic intervention.
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spelling pubmed-43293872015-03-03 Gene expression signatures in motor neurone disease fibroblasts reveal dysregulation of metabolism, hypoxia-response and RNA processing functions Raman, R Allen, S P Goodall, E F Kramer, S Ponger, L-L Heath, P R Milo, M Hollinger, H C Walsh, T Highley, J R Olpin, S McDermott, C J Shaw, P J Kirby, J Neuropathol Appl Neurobiol Original Articles AIMS: Amyotrophic lateral sclerosis (ALS) and primary lateral sclerosis (PLS) are two syndromic variants within the motor neurone disease spectrum. As PLS and most ALS cases are sporadic (SALS), this limits the availability of cellular models for investigating pathogenic mechanisms and therapeutic targets. The aim of this study was to use gene expression profiling to evaluate fibroblasts as cellular models for SALS and PLS, to establish whether dysregulated biological processes recapitulate those seen in the central nervous system and to elucidate pathways that distinguish the clinically defined variants of SALS and PLS. METHODS: Microarray analysis was performed on fibroblast RNA and differentially expressed genes identified. Genes in enriched biological pathways were validated by quantitative PCR and functional assays performed to establish the effect of altered RNA levels on the cellular processes. RESULTS: Gene expression profiling demonstrated that whilst there were many differentially expressed genes in common between SALS and PLS fibroblasts, there were many more expressed specifically in the SALS fibroblasts, including those involved in RNA processing and the stress response. Functional analysis of the fibroblasts confirmed a significant decrease in miRNA production and a reduced response to hypoxia in SALS fibroblasts. Furthermore, metabolic gene changes seen in SALS, many of which were also evident in PLS fibroblasts, resulted in dysfunctional cellular respiration. CONCLUSIONS: The data demonstrate that fibroblasts can act as cellular models for ALS and PLS, by establishing the transcriptional changes in known pathogenic pathways that confer subsequent functional effects and potentially highlight targets for therapeutic intervention. BlackWell Publishing Ltd 2015-02 2015-01-29 /pmc/articles/PMC4329387/ /pubmed/24750211 http://dx.doi.org/10.1111/nan.12147 Text en © 2014 The Authors. Neuropathology and Applied Neurobiology published by John Wiley & Sons Ltd. on behalf of British Neuropathological Society. http://creativecommons.org/licenses/by/3.0/ This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Raman, R
Allen, S P
Goodall, E F
Kramer, S
Ponger, L-L
Heath, P R
Milo, M
Hollinger, H C
Walsh, T
Highley, J R
Olpin, S
McDermott, C J
Shaw, P J
Kirby, J
Gene expression signatures in motor neurone disease fibroblasts reveal dysregulation of metabolism, hypoxia-response and RNA processing functions
title Gene expression signatures in motor neurone disease fibroblasts reveal dysregulation of metabolism, hypoxia-response and RNA processing functions
title_full Gene expression signatures in motor neurone disease fibroblasts reveal dysregulation of metabolism, hypoxia-response and RNA processing functions
title_fullStr Gene expression signatures in motor neurone disease fibroblasts reveal dysregulation of metabolism, hypoxia-response and RNA processing functions
title_full_unstemmed Gene expression signatures in motor neurone disease fibroblasts reveal dysregulation of metabolism, hypoxia-response and RNA processing functions
title_short Gene expression signatures in motor neurone disease fibroblasts reveal dysregulation of metabolism, hypoxia-response and RNA processing functions
title_sort gene expression signatures in motor neurone disease fibroblasts reveal dysregulation of metabolism, hypoxia-response and rna processing functions
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4329387/
https://www.ncbi.nlm.nih.gov/pubmed/24750211
http://dx.doi.org/10.1111/nan.12147
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