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Comparative transcriptomics of choroid plexus in Alzheimer’s disease, frontotemporal dementia and Huntington’s disease: implications for CSF homeostasis

BACKGROUND: In Alzheimer’s disease, there are striking changes in CSF composition that relate to altered choroid plexus (CP) function. Studying CP tissue gene expression at the blood–cerebrospinal fluid barrier could provide further insight into the epithelial and stromal responses to neurodegenerat...

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Autores principales: Stopa, Edward G., Tanis, Keith Q., Miller, Miles C., Nikonova, Elena V., Podtelezhnikov, Alexei A., Finney, Eva M., Stone, David J., Camargo, Luiz M., Parker, Lisan, Verma, Ajay, Baird, Andrew, Donahue, John E., Torabi, Tara, Eliceiri, Brian P., Silverberg, Gerald D., Johanson, Conrad E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5977762/
https://www.ncbi.nlm.nih.gov/pubmed/29848382
http://dx.doi.org/10.1186/s12987-018-0102-9
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author Stopa, Edward G.
Tanis, Keith Q.
Miller, Miles C.
Nikonova, Elena V.
Podtelezhnikov, Alexei A.
Finney, Eva M.
Stone, David J.
Camargo, Luiz M.
Parker, Lisan
Verma, Ajay
Baird, Andrew
Donahue, John E.
Torabi, Tara
Eliceiri, Brian P.
Silverberg, Gerald D.
Johanson, Conrad E.
author_facet Stopa, Edward G.
Tanis, Keith Q.
Miller, Miles C.
Nikonova, Elena V.
Podtelezhnikov, Alexei A.
Finney, Eva M.
Stone, David J.
Camargo, Luiz M.
Parker, Lisan
Verma, Ajay
Baird, Andrew
Donahue, John E.
Torabi, Tara
Eliceiri, Brian P.
Silverberg, Gerald D.
Johanson, Conrad E.
author_sort Stopa, Edward G.
collection PubMed
description BACKGROUND: In Alzheimer’s disease, there are striking changes in CSF composition that relate to altered choroid plexus (CP) function. Studying CP tissue gene expression at the blood–cerebrospinal fluid barrier could provide further insight into the epithelial and stromal responses to neurodegenerative disease states. METHODS: Transcriptome-wide Affymetrix microarrays were used to determine disease-related changes in gene expression in human CP. RNA from post-mortem samples of the entire lateral ventricular choroid plexus was extracted from 6 healthy controls (Ctrl), 7 patients with advanced (Braak and Braak stage III–VI) Alzheimer’s disease (AD), 4 with frontotemporal dementia (FTD) and 3 with Huntington’s disease (HuD). Statistics and agglomerative clustering were accomplished with MathWorks, MatLab; and gene set annotations by comparing input sets to GeneGo (http://www.genego.com) and Ingenuity (http://www.ingenuity.com) pathway sets. Bonferroni-corrected hypergeometric p-values of < 0.1 were considered a significant overlap between sets. RESULTS: Pronounced differences in gene expression occurred in CP of advanced AD patients vs. Ctrls. Metabolic and immune-related pathways including acute phase response, cytokine, cell adhesion, interferons, and JAK-STAT as well as mTOR were significantly enriched among the genes upregulated. Methionine degradation, claudin-5 and protein translation genes were downregulated. Many gene expression changes in AD patients were observed in FTD and HuD (e.g., claudin-5, tight junction downregulation), but there were significant differences between the disease groups. In AD and HuD (but not FTD), several neuroimmune-modulating interferons were significantly enriched (e.g., in AD: IFI-TM1, IFN-AR1, IFN-AR2, and IFN-GR2). AD-associated expression changes, but not those in HuD and FTD, were enriched for upregulation of VEGF signaling and immune response proteins, e.g., interleukins. HuD and FTD patients distinctively displayed upregulated cadherin-mediated adhesion. CONCLUSIONS: Our transcript data for human CP tissue provides genomic and mechanistic insight for differential expression in AD vs. FTD vs. HuD for stromal as well as epithelial components. These choroidal transcriptome characterizations elucidate immune activation, tissue functional resiliency, and CSF metabolic homeostasis. The BCSFB undergoes harmful, but also important functional and adaptive changes in neurodegenerative diseases; accordingly, the enriched JAK-STAT and mTOR pathways, respectively, likely help the CP in adaptive transcription and epithelial repair and/or replacement when harmed by neurodegeneration pathophysiology. We anticipate that these precise CP translational data will facilitate pharmacologic/transgenic therapies to alleviate dementia. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (10.1186/s12987-018-0102-9) contains supplementary material, which is available to authorized users.
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spelling pubmed-59777622018-06-06 Comparative transcriptomics of choroid plexus in Alzheimer’s disease, frontotemporal dementia and Huntington’s disease: implications for CSF homeostasis Stopa, Edward G. Tanis, Keith Q. Miller, Miles C. Nikonova, Elena V. Podtelezhnikov, Alexei A. Finney, Eva M. Stone, David J. Camargo, Luiz M. Parker, Lisan Verma, Ajay Baird, Andrew Donahue, John E. Torabi, Tara Eliceiri, Brian P. Silverberg, Gerald D. Johanson, Conrad E. Fluids Barriers CNS Research BACKGROUND: In Alzheimer’s disease, there are striking changes in CSF composition that relate to altered choroid plexus (CP) function. Studying CP tissue gene expression at the blood–cerebrospinal fluid barrier could provide further insight into the epithelial and stromal responses to neurodegenerative disease states. METHODS: Transcriptome-wide Affymetrix microarrays were used to determine disease-related changes in gene expression in human CP. RNA from post-mortem samples of the entire lateral ventricular choroid plexus was extracted from 6 healthy controls (Ctrl), 7 patients with advanced (Braak and Braak stage III–VI) Alzheimer’s disease (AD), 4 with frontotemporal dementia (FTD) and 3 with Huntington’s disease (HuD). Statistics and agglomerative clustering were accomplished with MathWorks, MatLab; and gene set annotations by comparing input sets to GeneGo (http://www.genego.com) and Ingenuity (http://www.ingenuity.com) pathway sets. Bonferroni-corrected hypergeometric p-values of < 0.1 were considered a significant overlap between sets. RESULTS: Pronounced differences in gene expression occurred in CP of advanced AD patients vs. Ctrls. Metabolic and immune-related pathways including acute phase response, cytokine, cell adhesion, interferons, and JAK-STAT as well as mTOR were significantly enriched among the genes upregulated. Methionine degradation, claudin-5 and protein translation genes were downregulated. Many gene expression changes in AD patients were observed in FTD and HuD (e.g., claudin-5, tight junction downregulation), but there were significant differences between the disease groups. In AD and HuD (but not FTD), several neuroimmune-modulating interferons were significantly enriched (e.g., in AD: IFI-TM1, IFN-AR1, IFN-AR2, and IFN-GR2). AD-associated expression changes, but not those in HuD and FTD, were enriched for upregulation of VEGF signaling and immune response proteins, e.g., interleukins. HuD and FTD patients distinctively displayed upregulated cadherin-mediated adhesion. CONCLUSIONS: Our transcript data for human CP tissue provides genomic and mechanistic insight for differential expression in AD vs. FTD vs. HuD for stromal as well as epithelial components. These choroidal transcriptome characterizations elucidate immune activation, tissue functional resiliency, and CSF metabolic homeostasis. The BCSFB undergoes harmful, but also important functional and adaptive changes in neurodegenerative diseases; accordingly, the enriched JAK-STAT and mTOR pathways, respectively, likely help the CP in adaptive transcription and epithelial repair and/or replacement when harmed by neurodegeneration pathophysiology. We anticipate that these precise CP translational data will facilitate pharmacologic/transgenic therapies to alleviate dementia. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (10.1186/s12987-018-0102-9) contains supplementary material, which is available to authorized users. BioMed Central 2018-05-31 /pmc/articles/PMC5977762/ /pubmed/29848382 http://dx.doi.org/10.1186/s12987-018-0102-9 Text en © The Author(s) 2018 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research
Stopa, Edward G.
Tanis, Keith Q.
Miller, Miles C.
Nikonova, Elena V.
Podtelezhnikov, Alexei A.
Finney, Eva M.
Stone, David J.
Camargo, Luiz M.
Parker, Lisan
Verma, Ajay
Baird, Andrew
Donahue, John E.
Torabi, Tara
Eliceiri, Brian P.
Silverberg, Gerald D.
Johanson, Conrad E.
Comparative transcriptomics of choroid plexus in Alzheimer’s disease, frontotemporal dementia and Huntington’s disease: implications for CSF homeostasis
title Comparative transcriptomics of choroid plexus in Alzheimer’s disease, frontotemporal dementia and Huntington’s disease: implications for CSF homeostasis
title_full Comparative transcriptomics of choroid plexus in Alzheimer’s disease, frontotemporal dementia and Huntington’s disease: implications for CSF homeostasis
title_fullStr Comparative transcriptomics of choroid plexus in Alzheimer’s disease, frontotemporal dementia and Huntington’s disease: implications for CSF homeostasis
title_full_unstemmed Comparative transcriptomics of choroid plexus in Alzheimer’s disease, frontotemporal dementia and Huntington’s disease: implications for CSF homeostasis
title_short Comparative transcriptomics of choroid plexus in Alzheimer’s disease, frontotemporal dementia and Huntington’s disease: implications for CSF homeostasis
title_sort comparative transcriptomics of choroid plexus in alzheimer’s disease, frontotemporal dementia and huntington’s disease: implications for csf homeostasis
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5977762/
https://www.ncbi.nlm.nih.gov/pubmed/29848382
http://dx.doi.org/10.1186/s12987-018-0102-9
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