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Acute telomerase components depletion triggers oxidative stress as an early event previous to telomeric shortening

Loss of function of dyskerin (DKC1), NOP10 and TIN2 are responsible for different inheritance patterns of Dyskeratosis congenita (DC; ORPHA1775). They are key components of telomerase (DKC1 and NOP10) and shelterin (TIN2), and play an important role in telomere homeostasis. They participate in sever...

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Autores principales: Ibáñez-Cabellos, José Santiago, Pérez-Machado, Giselle, Seco-Cervera, Marta, Berenguer-Pascual, Ester, García-Giménez, José Luis, Pallardó, Federico V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5650655/
https://www.ncbi.nlm.nih.gov/pubmed/29055871
http://dx.doi.org/10.1016/j.redox.2017.10.004
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author Ibáñez-Cabellos, José Santiago
Pérez-Machado, Giselle
Seco-Cervera, Marta
Berenguer-Pascual, Ester
García-Giménez, José Luis
Pallardó, Federico V.
author_facet Ibáñez-Cabellos, José Santiago
Pérez-Machado, Giselle
Seco-Cervera, Marta
Berenguer-Pascual, Ester
García-Giménez, José Luis
Pallardó, Federico V.
author_sort Ibáñez-Cabellos, José Santiago
collection PubMed
description Loss of function of dyskerin (DKC1), NOP10 and TIN2 are responsible for different inheritance patterns of Dyskeratosis congenita (DC; ORPHA1775). They are key components of telomerase (DKC1 and NOP10) and shelterin (TIN2), and play an important role in telomere homeostasis. They participate in several fundamental cellular processes by contributing to Dyskeratosis congenita through mechanisms that are not fully understood. Presence of oxidative stress was postulated to result from telomerase ablation. However, the resulting disturbed redox status can promote telomere attrition by generating a vicious circle, which promotes cellular senescence. This fact prompted us to study if acute loss of DKC1, NOP10 and TINF2 can promote redox disequilibrium as an early event when telomere shortening has not yet taken place. We generated siRNA-mediated (DKC1, NOP10 and TINF2) cell lines by RNA interference, which was confirmed by mRNA and protein expression analyses. No telomere shortening occurred in any silenced cell line. Depletion of H/ACA ribonucleoproteins DKC1 and NOP10 diminished telomerase activity via TERC down-regulation, and produced alterations in pseudouridylation and ribosomal biogenesis. An increase in the GSSG/GSH ratio, carbonylated proteins and oxidized peroxiredoxin-6 was observed, in addition to MnSOD and TRX1 overexpression in the siRNA DC cells. Likewise, high PARylation levels and high PARP1 protein expression were detected. In contrast, the silenced TINF2 cells did not alter any evaluated oxidative stress marker. Altogether these findings lead us to conclude that loss of DKC1 and NOP10 functions induces oxidative stress in a telomere shortening independent manner.
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spelling pubmed-56506552017-10-30 Acute telomerase components depletion triggers oxidative stress as an early event previous to telomeric shortening Ibáñez-Cabellos, José Santiago Pérez-Machado, Giselle Seco-Cervera, Marta Berenguer-Pascual, Ester García-Giménez, José Luis Pallardó, Federico V. Redox Biol Research Paper Loss of function of dyskerin (DKC1), NOP10 and TIN2 are responsible for different inheritance patterns of Dyskeratosis congenita (DC; ORPHA1775). They are key components of telomerase (DKC1 and NOP10) and shelterin (TIN2), and play an important role in telomere homeostasis. They participate in several fundamental cellular processes by contributing to Dyskeratosis congenita through mechanisms that are not fully understood. Presence of oxidative stress was postulated to result from telomerase ablation. However, the resulting disturbed redox status can promote telomere attrition by generating a vicious circle, which promotes cellular senescence. This fact prompted us to study if acute loss of DKC1, NOP10 and TINF2 can promote redox disequilibrium as an early event when telomere shortening has not yet taken place. We generated siRNA-mediated (DKC1, NOP10 and TINF2) cell lines by RNA interference, which was confirmed by mRNA and protein expression analyses. No telomere shortening occurred in any silenced cell line. Depletion of H/ACA ribonucleoproteins DKC1 and NOP10 diminished telomerase activity via TERC down-regulation, and produced alterations in pseudouridylation and ribosomal biogenesis. An increase in the GSSG/GSH ratio, carbonylated proteins and oxidized peroxiredoxin-6 was observed, in addition to MnSOD and TRX1 overexpression in the siRNA DC cells. Likewise, high PARylation levels and high PARP1 protein expression were detected. In contrast, the silenced TINF2 cells did not alter any evaluated oxidative stress marker. Altogether these findings lead us to conclude that loss of DKC1 and NOP10 functions induces oxidative stress in a telomere shortening independent manner. Elsevier 2017-10-07 /pmc/articles/PMC5650655/ /pubmed/29055871 http://dx.doi.org/10.1016/j.redox.2017.10.004 Text en © 2017 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Paper
Ibáñez-Cabellos, José Santiago
Pérez-Machado, Giselle
Seco-Cervera, Marta
Berenguer-Pascual, Ester
García-Giménez, José Luis
Pallardó, Federico V.
Acute telomerase components depletion triggers oxidative stress as an early event previous to telomeric shortening
title Acute telomerase components depletion triggers oxidative stress as an early event previous to telomeric shortening
title_full Acute telomerase components depletion triggers oxidative stress as an early event previous to telomeric shortening
title_fullStr Acute telomerase components depletion triggers oxidative stress as an early event previous to telomeric shortening
title_full_unstemmed Acute telomerase components depletion triggers oxidative stress as an early event previous to telomeric shortening
title_short Acute telomerase components depletion triggers oxidative stress as an early event previous to telomeric shortening
title_sort acute telomerase components depletion triggers oxidative stress as an early event previous to telomeric shortening
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5650655/
https://www.ncbi.nlm.nih.gov/pubmed/29055871
http://dx.doi.org/10.1016/j.redox.2017.10.004
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