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SAMHD1 prevents autoimmunity by maintaining genome stability

OBJECTIVES: The HIV restriction factor, SAMHD1 (SAM domain and HD domain-containing protein 1), is a triphosphohydrolase that degrades deoxyribonucleoside triphosphates (dNTPs). Mutations in SAMHD1 cause Aicardi–Goutières syndrome (AGS), an inflammatory disorder that shares phenotypic similarity wit...

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Autores principales: Kretschmer, Stefanie, Wolf, Christine, König, Nadja, Staroske, Wolfgang, Guck, Jochen, Häusler, Martin, Luksch, Hella, Nguyen, Laura A, Kim, Baek, Alexopoulou, Dimitra, Dahl, Andreas, Rapp, Alexander, Cardoso, M Cristina, Shevchenko, Anna, Lee-Kirsch, Min Ae
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BMJ Publishing Group 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4345975/
https://www.ncbi.nlm.nih.gov/pubmed/24445253
http://dx.doi.org/10.1136/annrheumdis-2013-204845
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author Kretschmer, Stefanie
Wolf, Christine
König, Nadja
Staroske, Wolfgang
Guck, Jochen
Häusler, Martin
Luksch, Hella
Nguyen, Laura A
Kim, Baek
Alexopoulou, Dimitra
Dahl, Andreas
Rapp, Alexander
Cardoso, M Cristina
Shevchenko, Anna
Lee-Kirsch, Min Ae
author_facet Kretschmer, Stefanie
Wolf, Christine
König, Nadja
Staroske, Wolfgang
Guck, Jochen
Häusler, Martin
Luksch, Hella
Nguyen, Laura A
Kim, Baek
Alexopoulou, Dimitra
Dahl, Andreas
Rapp, Alexander
Cardoso, M Cristina
Shevchenko, Anna
Lee-Kirsch, Min Ae
author_sort Kretschmer, Stefanie
collection PubMed
description OBJECTIVES: The HIV restriction factor, SAMHD1 (SAM domain and HD domain-containing protein 1), is a triphosphohydrolase that degrades deoxyribonucleoside triphosphates (dNTPs). Mutations in SAMHD1 cause Aicardi–Goutières syndrome (AGS), an inflammatory disorder that shares phenotypic similarity with systemic lupus erythematosus, including activation of antiviral type 1 interferon (IFN). To further define the pathomechanisms underlying autoimmunity in AGS due to SAMHD1 mutations, we investigated the physiological properties of SAMHD1. METHODS: Primary patient fibroblasts were examined for dNTP levels, proliferation, senescence, cell cycle progression and DNA damage. Genome-wide transcriptional profiles were generated by RNA sequencing. Interaction of SAMHD1 with cyclin A was assessed by coimmunoprecipitation and fluorescence cross-correlation spectroscopy. Cell cycle-dependent phosphorylation of SAMHD1 was examined in synchronised HeLa cells and using recombinant SAMHD1. SAMHD1 was knocked down by RNA interference. RESULTS: We show that increased dNTP pools due to SAMHD1 deficiency cause genome instability in fibroblasts of patients with AGS. Constitutive DNA damage signalling is associated with cell cycle delay, cellular senescence, and upregulation of IFN-stimulated genes. SAMHD1 is phosphorylated by cyclin A/cyclin-dependent kinase 1 in a cell cycle-dependent manner, and its level fluctuates during the cell cycle, with the lowest levels observed in G(1)/S phase. Knockdown of SAMHD1 by RNA interference recapitulates activation of DNA damage signalling and type 1 IFN activation. CONCLUSIONS: SAMHD1 is required for genome integrity by maintaining balanced dNTP pools. dNTP imbalances due to SAMHD1 deficiency cause DNA damage, leading to intrinsic activation of IFN signalling. These findings establish a novel link between DNA damage signalling and innate immune activation in the pathogenesis of autoimmunity.
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spelling pubmed-43459752015-03-18 SAMHD1 prevents autoimmunity by maintaining genome stability Kretschmer, Stefanie Wolf, Christine König, Nadja Staroske, Wolfgang Guck, Jochen Häusler, Martin Luksch, Hella Nguyen, Laura A Kim, Baek Alexopoulou, Dimitra Dahl, Andreas Rapp, Alexander Cardoso, M Cristina Shevchenko, Anna Lee-Kirsch, Min Ae Ann Rheum Dis Electronic Pages OBJECTIVES: The HIV restriction factor, SAMHD1 (SAM domain and HD domain-containing protein 1), is a triphosphohydrolase that degrades deoxyribonucleoside triphosphates (dNTPs). Mutations in SAMHD1 cause Aicardi–Goutières syndrome (AGS), an inflammatory disorder that shares phenotypic similarity with systemic lupus erythematosus, including activation of antiviral type 1 interferon (IFN). To further define the pathomechanisms underlying autoimmunity in AGS due to SAMHD1 mutations, we investigated the physiological properties of SAMHD1. METHODS: Primary patient fibroblasts were examined for dNTP levels, proliferation, senescence, cell cycle progression and DNA damage. Genome-wide transcriptional profiles were generated by RNA sequencing. Interaction of SAMHD1 with cyclin A was assessed by coimmunoprecipitation and fluorescence cross-correlation spectroscopy. Cell cycle-dependent phosphorylation of SAMHD1 was examined in synchronised HeLa cells and using recombinant SAMHD1. SAMHD1 was knocked down by RNA interference. RESULTS: We show that increased dNTP pools due to SAMHD1 deficiency cause genome instability in fibroblasts of patients with AGS. Constitutive DNA damage signalling is associated with cell cycle delay, cellular senescence, and upregulation of IFN-stimulated genes. SAMHD1 is phosphorylated by cyclin A/cyclin-dependent kinase 1 in a cell cycle-dependent manner, and its level fluctuates during the cell cycle, with the lowest levels observed in G(1)/S phase. Knockdown of SAMHD1 by RNA interference recapitulates activation of DNA damage signalling and type 1 IFN activation. CONCLUSIONS: SAMHD1 is required for genome integrity by maintaining balanced dNTP pools. dNTP imbalances due to SAMHD1 deficiency cause DNA damage, leading to intrinsic activation of IFN signalling. These findings establish a novel link between DNA damage signalling and innate immune activation in the pathogenesis of autoimmunity. BMJ Publishing Group 2015-03 2014-01-20 /pmc/articles/PMC4345975/ /pubmed/24445253 http://dx.doi.org/10.1136/annrheumdis-2013-204845 Text en Published by the BMJ Publishing Group Limited. For permission to use (where not already granted under a licence) please go to http://group.bmj.com/group/rights-licensing/permissions This is an Open Access article distributed in accordance with the Creative Commons Attribution Non Commercial (CC BY-NC 3.0) license, which permits others to distribute, remix, adapt, build upon this work non-commercially, and license their derivative works on different terms, provided the original work is properly cited and the use is non-commercial. See: http://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Electronic Pages
Kretschmer, Stefanie
Wolf, Christine
König, Nadja
Staroske, Wolfgang
Guck, Jochen
Häusler, Martin
Luksch, Hella
Nguyen, Laura A
Kim, Baek
Alexopoulou, Dimitra
Dahl, Andreas
Rapp, Alexander
Cardoso, M Cristina
Shevchenko, Anna
Lee-Kirsch, Min Ae
SAMHD1 prevents autoimmunity by maintaining genome stability
title SAMHD1 prevents autoimmunity by maintaining genome stability
title_full SAMHD1 prevents autoimmunity by maintaining genome stability
title_fullStr SAMHD1 prevents autoimmunity by maintaining genome stability
title_full_unstemmed SAMHD1 prevents autoimmunity by maintaining genome stability
title_short SAMHD1 prevents autoimmunity by maintaining genome stability
title_sort samhd1 prevents autoimmunity by maintaining genome stability
topic Electronic Pages
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4345975/
https://www.ncbi.nlm.nih.gov/pubmed/24445253
http://dx.doi.org/10.1136/annrheumdis-2013-204845
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