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The DUF3715 domain has a conserved role in RNA-directed transposon silencing

RNA-directed transposon silencing operates in the mammalian soma and germline to safeguard genomic integrity. The piRNA pathway and the HUSH complex identify active transposons through recognition of their nascent transcripts, but mechanistic understanding of how these distinct pathways evolved is l...

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Autores principales: Schöpp, Theresa, Prigozhin, Daniil M., Douse, Christopher, Kaji, Keisuke, Cook, Atlanta G., O'Carroll, Dónal
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10578480/
https://www.ncbi.nlm.nih.gov/pubmed/37433650
http://dx.doi.org/10.1261/rna.079693.123
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author Schöpp, Theresa
Prigozhin, Daniil M.
Douse, Christopher
Kaji, Keisuke
Cook, Atlanta G.
O'Carroll, Dónal
author_facet Schöpp, Theresa
Prigozhin, Daniil M.
Douse, Christopher
Kaji, Keisuke
Cook, Atlanta G.
O'Carroll, Dónal
author_sort Schöpp, Theresa
collection PubMed
description RNA-directed transposon silencing operates in the mammalian soma and germline to safeguard genomic integrity. The piRNA pathway and the HUSH complex identify active transposons through recognition of their nascent transcripts, but mechanistic understanding of how these distinct pathways evolved is lacking. TASOR is an essential component of the HUSH complex. TASOR's DUF3715 domain adopts a pseudo-PARP structure and is required for transposon silencing in a manner independent of complex assembly. TEX15, an essential piRNA pathway factor, also contains the DUF3715 domain. Here, we show that TASOR's and TEX15's DUF3715 domain share extensive structural homology. We found that the DUF3715 domain arose in early eukaryotes and that in vertebrates it is restricted to TEX15, TASOR, and TASORB orthologs. While TASOR-like proteins are found throughout metazoa, TEX15 is vertebrate-specific. The branching of TEX15 and the TASOR-like DUF3715 domain likely occurred in early metazoan evolution. Remarkably, despite this vast evolutionary distance, the DUF3715 domain from divergent TEX15 sequences can functionally substitute the DUF3715 domain of TASOR and mediates transposon silencing. We have thus termed this domain of unknown function as the RNA-directed pseudo-PARP transposon silencing (RDTS) domain. In summary, we show an unexpected functional link between these critical transposon silencing pathways.
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spelling pubmed-105784802023-10-17 The DUF3715 domain has a conserved role in RNA-directed transposon silencing Schöpp, Theresa Prigozhin, Daniil M. Douse, Christopher Kaji, Keisuke Cook, Atlanta G. O'Carroll, Dónal RNA Reports RNA-directed transposon silencing operates in the mammalian soma and germline to safeguard genomic integrity. The piRNA pathway and the HUSH complex identify active transposons through recognition of their nascent transcripts, but mechanistic understanding of how these distinct pathways evolved is lacking. TASOR is an essential component of the HUSH complex. TASOR's DUF3715 domain adopts a pseudo-PARP structure and is required for transposon silencing in a manner independent of complex assembly. TEX15, an essential piRNA pathway factor, also contains the DUF3715 domain. Here, we show that TASOR's and TEX15's DUF3715 domain share extensive structural homology. We found that the DUF3715 domain arose in early eukaryotes and that in vertebrates it is restricted to TEX15, TASOR, and TASORB orthologs. While TASOR-like proteins are found throughout metazoa, TEX15 is vertebrate-specific. The branching of TEX15 and the TASOR-like DUF3715 domain likely occurred in early metazoan evolution. Remarkably, despite this vast evolutionary distance, the DUF3715 domain from divergent TEX15 sequences can functionally substitute the DUF3715 domain of TASOR and mediates transposon silencing. We have thus termed this domain of unknown function as the RNA-directed pseudo-PARP transposon silencing (RDTS) domain. In summary, we show an unexpected functional link between these critical transposon silencing pathways. Cold Spring Harbor Laboratory Press 2023-10 /pmc/articles/PMC10578480/ /pubmed/37433650 http://dx.doi.org/10.1261/rna.079693.123 Text en © 2023 Schöpp et al.; Published by Cold Spring Harbor Laboratory Press for the RNA Society https://creativecommons.org/licenses/by/4.0/This article, published in RNA, is available under a Creative Commons License (Attribution 4.0 International), as described at http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Reports
Schöpp, Theresa
Prigozhin, Daniil M.
Douse, Christopher
Kaji, Keisuke
Cook, Atlanta G.
O'Carroll, Dónal
The DUF3715 domain has a conserved role in RNA-directed transposon silencing
title The DUF3715 domain has a conserved role in RNA-directed transposon silencing
title_full The DUF3715 domain has a conserved role in RNA-directed transposon silencing
title_fullStr The DUF3715 domain has a conserved role in RNA-directed transposon silencing
title_full_unstemmed The DUF3715 domain has a conserved role in RNA-directed transposon silencing
title_short The DUF3715 domain has a conserved role in RNA-directed transposon silencing
title_sort duf3715 domain has a conserved role in rna-directed transposon silencing
topic Reports
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10578480/
https://www.ncbi.nlm.nih.gov/pubmed/37433650
http://dx.doi.org/10.1261/rna.079693.123
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