Literature DB >> 32910990

Acute depletion of telomerase components DKC1 and NOP10 induces oxidative stress and disrupts ribosomal biogenesis via NPM1 and activation of the P53 pathway.

José Santiago Ibáñez-Cabellos1, Marta Seco-Cervera2, Carmen Picher-Latorre3, Gisselle Pérez-Machado4, José Luis García-Giménez5, Federico V Pallardó6.   

Abstract

Mutations in DKC1, NOP10, and TINF2 genes, coding for proteins in telomerase and shelterin complexes, are responsible for diverse diseases known as telomeropathies and ribosomopathies, including dyskeratosis congenita (DC, ORPHA 1775). These genes contribute to the DC phenotype through mechanisms that are not completely understood. We previously demonstrated in models of DC that oxidative stress is an early and independent event that occurs prior to telomere shortening. To clarify the mechanisms that induce oxidative stress, we silenced genes DKC1, NOP10, and TINF2 with siRNA technology. With RNA array hybridisation, we found several altered pathways for each siRNA model. Afterwards, we identified common related genes. The silenced cell line with the most deregulated genes and pathways was siNOP10, followed by siDKC1, and then by siTINF2 to a lesser extent. The siDKC1 and siNOP10 models shared altered expression of genes in the p53 pathway, while siNOP10 and siTINF2 had the adherens junction pathway in common. We also observed that depletion of DKC1 and NOP10 H/ACA ribonucleoprotein produced ribosomal biogenesis impairment which, in turn, promoted p53 pathway activation. Finally, we found that those enzymes responsible for GSH synthesis were down-regulated in models of siDKC1 and siNOP10. In contrast, the silenced cells for TINF2 showed no disruption of ribosomal biogenesis or oxidative stress and did not produce p53 pathway activation. These results indicate that depletion of DKC1 and NOP10 promotes oxidative stress and disrupts ribosomal biogenesis which, in turn, activates the p53 pathway.
Copyright © 2020 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Ageing; Oxidative stress; Ribosomopathies; Telomeropathies; p53 pathway

Year:  2020        PMID: 32910990     DOI: 10.1016/j.bbamcr.2020.118845

Source DB:  PubMed          Journal:  Biochim Biophys Acta Mol Cell Res        ISSN: 0167-4889            Impact factor:   4.739


  4 in total

1.  Intron retention by a novel intronic mutation in DKC1 gene caused recurrent still birth and early death in a Chinese family.

Authors:  Qiufang Guo; Ping Zhang; Wenjing Ying; Yaqiong Wang; Jitao Zhu; Gang Li; Huijun Wang; Xiaochuan Wang; Caixia Lei; Wenhao Zhou; Jinqiao Sun; Bingbing Wu
Journal:  Mol Genet Genomic Med       Date:  2022-04-06       Impact factor: 2.473

2.  UTP14A, DKC1, DDX10, PinX1, and ESF1 Modulate Cardiac Angiogenesis Leading to Obesity-Induced Cardiac Injury.

Authors:  Xiaoyu Pan; Shuchun Chen; Xing Chen; Qingjuan Ren; Lin Yue; Shu Niu; Zelin Li; Ruiyi Zhu; Xiaoyi Chen; Zhuoya Jia; Ruoxi Zhen; Jiangli Ban
Journal:  J Diabetes Res       Date:  2022-06-13       Impact factor: 4.061

3.  Cross-species Association Between Telomere Length and Glucocorticoid Exposure.

Authors:  Richard S Lee; Peter P Zandi; Alicia Santos; Anna Aulinas; Jenny L Carey; Susan M Webb; Mary E McCaul; Eugenia Resmini; Gary S Wand
Journal:  J Clin Endocrinol Metab       Date:  2021-11-19       Impact factor: 6.134

Review 4.  Multisystemic Manifestations in Rare Diseases: The Experience of Dyskeratosis Congenita.

Authors:  Michele Callea; Diego Martinelli; Francisco Cammarata-Scalisi; Chiara Grimaldi; Houweyda Jilani; Piercesare Grimaldi; Colin Eric Willoughby; Antonino Morabito
Journal:  Genes (Basel)       Date:  2022-03-11       Impact factor: 4.096

  4 in total

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