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Astrocyte senescence may drive alterations in GFAPα, CDKN2A p14(ARF), and TAU3 transcript expression and contribute to cognitive decline

The accumulation of senescent cells in tissues is causally linked to the development of several age-related diseases; the removal of senescent glial cells in animal models prevents Tau accumulation and cognitive decline. Senescent cells can arise through several distinct mechanisms; one such mechani...

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Autores principales: Lye, Jed J., Latorre, Eva, Lee, Ben P., Bandinelli, Stefania, Holley, Janet E., Gutowski, Nicholas J., Ferrucci, Luigi, Harries, Lorna W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer International Publishing 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6885035/
https://www.ncbi.nlm.nih.gov/pubmed/31654269
http://dx.doi.org/10.1007/s11357-019-00100-3
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author Lye, Jed J.
Latorre, Eva
Lee, Ben P.
Bandinelli, Stefania
Holley, Janet E.
Gutowski, Nicholas J.
Ferrucci, Luigi
Harries, Lorna W.
author_facet Lye, Jed J.
Latorre, Eva
Lee, Ben P.
Bandinelli, Stefania
Holley, Janet E.
Gutowski, Nicholas J.
Ferrucci, Luigi
Harries, Lorna W.
author_sort Lye, Jed J.
collection PubMed
description The accumulation of senescent cells in tissues is causally linked to the development of several age-related diseases; the removal of senescent glial cells in animal models prevents Tau accumulation and cognitive decline. Senescent cells can arise through several distinct mechanisms; one such mechanism is dysregulation of alternative splicing. In this study, we characterised the senescent cell phenotype in primary human astrocytes in terms of SA-β-Gal staining and SASP secretion, and then assessed splicing factor expression and candidate gene splicing patterns. Finally, we assessed associations between expression of dysregulated isoforms and premature cognitive decline in 197 samples from the InCHIANTI study of ageing, where expression was present in both blood and brain. We demonstrate here that senescent astrocytes secrete a modified SASP characterised by increased IL8, MMP3, MMP10, and TIMP2 but decreased IL10 levels. We identified significant changes in splicing factor expression for 10/20 splicing factors tested in senescent astrocytes compared with early passage cells, as well as dysregulation of isoform levels for 8/13 brain or senescence genes tested. Finally, associations were identified between peripheral blood GFAPα, TAU3, and CDKN2A (P14(ARF)) isoform levels and mild or severe cognitive decline over a 3–7-year period. Our data are suggestive that some of the features of cognitive decline may arise from dysregulated splicing of important genes in senescent brain support cells, and that defects in alternative splicing or splicing regulator expression deserve exploration as points of therapeutic intervention in the future.
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spelling pubmed-68850352019-12-12 Astrocyte senescence may drive alterations in GFAPα, CDKN2A p14(ARF), and TAU3 transcript expression and contribute to cognitive decline Lye, Jed J. Latorre, Eva Lee, Ben P. Bandinelli, Stefania Holley, Janet E. Gutowski, Nicholas J. Ferrucci, Luigi Harries, Lorna W. GeroScience Original Article The accumulation of senescent cells in tissues is causally linked to the development of several age-related diseases; the removal of senescent glial cells in animal models prevents Tau accumulation and cognitive decline. Senescent cells can arise through several distinct mechanisms; one such mechanism is dysregulation of alternative splicing. In this study, we characterised the senescent cell phenotype in primary human astrocytes in terms of SA-β-Gal staining and SASP secretion, and then assessed splicing factor expression and candidate gene splicing patterns. Finally, we assessed associations between expression of dysregulated isoforms and premature cognitive decline in 197 samples from the InCHIANTI study of ageing, where expression was present in both blood and brain. We demonstrate here that senescent astrocytes secrete a modified SASP characterised by increased IL8, MMP3, MMP10, and TIMP2 but decreased IL10 levels. We identified significant changes in splicing factor expression for 10/20 splicing factors tested in senescent astrocytes compared with early passage cells, as well as dysregulation of isoform levels for 8/13 brain or senescence genes tested. Finally, associations were identified between peripheral blood GFAPα, TAU3, and CDKN2A (P14(ARF)) isoform levels and mild or severe cognitive decline over a 3–7-year period. Our data are suggestive that some of the features of cognitive decline may arise from dysregulated splicing of important genes in senescent brain support cells, and that defects in alternative splicing or splicing regulator expression deserve exploration as points of therapeutic intervention in the future. Springer International Publishing 2019-10-25 /pmc/articles/PMC6885035/ /pubmed/31654269 http://dx.doi.org/10.1007/s11357-019-00100-3 Text en © The Author(s) 2019 Open Access This 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.
spellingShingle Original Article
Lye, Jed J.
Latorre, Eva
Lee, Ben P.
Bandinelli, Stefania
Holley, Janet E.
Gutowski, Nicholas J.
Ferrucci, Luigi
Harries, Lorna W.
Astrocyte senescence may drive alterations in GFAPα, CDKN2A p14(ARF), and TAU3 transcript expression and contribute to cognitive decline
title Astrocyte senescence may drive alterations in GFAPα, CDKN2A p14(ARF), and TAU3 transcript expression and contribute to cognitive decline
title_full Astrocyte senescence may drive alterations in GFAPα, CDKN2A p14(ARF), and TAU3 transcript expression and contribute to cognitive decline
title_fullStr Astrocyte senescence may drive alterations in GFAPα, CDKN2A p14(ARF), and TAU3 transcript expression and contribute to cognitive decline
title_full_unstemmed Astrocyte senescence may drive alterations in GFAPα, CDKN2A p14(ARF), and TAU3 transcript expression and contribute to cognitive decline
title_short Astrocyte senescence may drive alterations in GFAPα, CDKN2A p14(ARF), and TAU3 transcript expression and contribute to cognitive decline
title_sort astrocyte senescence may drive alterations in gfapα, cdkn2a p14(arf), and tau3 transcript expression and contribute to cognitive decline
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6885035/
https://www.ncbi.nlm.nih.gov/pubmed/31654269
http://dx.doi.org/10.1007/s11357-019-00100-3
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