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The HUSH complex cooperates with TRIM28 to repress young retrotransposons and new genes

Retrotransposons encompass half of the human genome and contribute to the formation of heterochromatin, which provides nuclear structure and regulates gene expression. Here, we asked if the human silencing hub (HUSH) complex is necessary to silence retrotransposons and whether it collaborates with T...

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Autores principales: Robbez-Masson, Luisa, Tie, Christopher H.C., Conde, Lucia, Tunbak, Hale, Husovsky, Connor, Tchasovnikarova, Iva A., Timms, Richard T., Herrero, Javier, Lehner, Paul J., Rowe, Helen M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5991525/
https://www.ncbi.nlm.nih.gov/pubmed/29728366
http://dx.doi.org/10.1101/gr.228171.117
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author Robbez-Masson, Luisa
Tie, Christopher H.C.
Conde, Lucia
Tunbak, Hale
Husovsky, Connor
Tchasovnikarova, Iva A.
Timms, Richard T.
Herrero, Javier
Lehner, Paul J.
Rowe, Helen M.
author_facet Robbez-Masson, Luisa
Tie, Christopher H.C.
Conde, Lucia
Tunbak, Hale
Husovsky, Connor
Tchasovnikarova, Iva A.
Timms, Richard T.
Herrero, Javier
Lehner, Paul J.
Rowe, Helen M.
author_sort Robbez-Masson, Luisa
collection PubMed
description Retrotransposons encompass half of the human genome and contribute to the formation of heterochromatin, which provides nuclear structure and regulates gene expression. Here, we asked if the human silencing hub (HUSH) complex is necessary to silence retrotransposons and whether it collaborates with TRIM28 and the chromatin remodeler ATRX at specific genomic loci. We show that the HUSH complex contributes to de novo repression and DNA methylation of an SVA retrotransposon reporter. By using naïve versus primed mouse pluripotent stem cells, we reveal a critical role for the HUSH complex in naïve cells, implicating it in programming epigenetic marks in development. Although the HUSH component FAM208A binds to endogenous retroviruses (ERVs) and long interspersed element-1s (LINE-1s or L1s), it is mainly required to repress evolutionarily young L1s (mouse-specific lineages <5 million years old). TRIM28, in contrast, is necessary to repress both ERVs and young L1s. Genes co-repressed by TRIM28 and FAM208A are evolutionarily young, or exhibit tissue-specific expression, are enriched in young L1s, and display evidence for regulation through LTR promoters. Finally, we demonstrate that the HUSH complex is also required to repress L1 elements in human cells. Overall, these data indicate that the HUSH complex and TRIM28 co-repress young retrotransposons and new genes rewired by retrotransposon noncoding DNA.
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spelling pubmed-59915252018-06-18 The HUSH complex cooperates with TRIM28 to repress young retrotransposons and new genes Robbez-Masson, Luisa Tie, Christopher H.C. Conde, Lucia Tunbak, Hale Husovsky, Connor Tchasovnikarova, Iva A. Timms, Richard T. Herrero, Javier Lehner, Paul J. Rowe, Helen M. Genome Res Research Retrotransposons encompass half of the human genome and contribute to the formation of heterochromatin, which provides nuclear structure and regulates gene expression. Here, we asked if the human silencing hub (HUSH) complex is necessary to silence retrotransposons and whether it collaborates with TRIM28 and the chromatin remodeler ATRX at specific genomic loci. We show that the HUSH complex contributes to de novo repression and DNA methylation of an SVA retrotransposon reporter. By using naïve versus primed mouse pluripotent stem cells, we reveal a critical role for the HUSH complex in naïve cells, implicating it in programming epigenetic marks in development. Although the HUSH component FAM208A binds to endogenous retroviruses (ERVs) and long interspersed element-1s (LINE-1s or L1s), it is mainly required to repress evolutionarily young L1s (mouse-specific lineages <5 million years old). TRIM28, in contrast, is necessary to repress both ERVs and young L1s. Genes co-repressed by TRIM28 and FAM208A are evolutionarily young, or exhibit tissue-specific expression, are enriched in young L1s, and display evidence for regulation through LTR promoters. Finally, we demonstrate that the HUSH complex is also required to repress L1 elements in human cells. Overall, these data indicate that the HUSH complex and TRIM28 co-repress young retrotransposons and new genes rewired by retrotransposon noncoding DNA. Cold Spring Harbor Laboratory Press 2018-06 /pmc/articles/PMC5991525/ /pubmed/29728366 http://dx.doi.org/10.1101/gr.228171.117 Text en © 2018 Robbez-Masson et al.; Published by Cold Spring Harbor Laboratory Press http://creativecommons.org/licenses/by/4.0/ This article, published in Genome Research, is available under a Creative Commons License (Attribution 4.0 International), as described at http://creativecommons.org/licenses/by/4.0/.
spellingShingle Research
Robbez-Masson, Luisa
Tie, Christopher H.C.
Conde, Lucia
Tunbak, Hale
Husovsky, Connor
Tchasovnikarova, Iva A.
Timms, Richard T.
Herrero, Javier
Lehner, Paul J.
Rowe, Helen M.
The HUSH complex cooperates with TRIM28 to repress young retrotransposons and new genes
title The HUSH complex cooperates with TRIM28 to repress young retrotransposons and new genes
title_full The HUSH complex cooperates with TRIM28 to repress young retrotransposons and new genes
title_fullStr The HUSH complex cooperates with TRIM28 to repress young retrotransposons and new genes
title_full_unstemmed The HUSH complex cooperates with TRIM28 to repress young retrotransposons and new genes
title_short The HUSH complex cooperates with TRIM28 to repress young retrotransposons and new genes
title_sort hush complex cooperates with trim28 to repress young retrotransposons and new genes
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5991525/
https://www.ncbi.nlm.nih.gov/pubmed/29728366
http://dx.doi.org/10.1101/gr.228171.117
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