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Molecular architecture of the human tRNA ligase complex

RtcB enzymes are RNA ligases that play essential roles in tRNA splicing, unfolded protein response, and RNA repair. In metazoa, RtcB functions as part of a five-subunit tRNA ligase complex (tRNA-LC) along with Ddx1, Cgi-99, Fam98B, and Ashwin. The human tRNA-LC or its individual subunits have been i...

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Autores principales: Kroupova, Alena, Ackle, Fabian, Asanović, Igor, Weitzer, Stefan, Boneberg, Franziska M, Faini, Marco, Leitner, Alexander, Chui, Alessia, Aebersold, Ruedi, Martinez, Javier, Jinek, Martin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8668186/
https://www.ncbi.nlm.nih.gov/pubmed/34854379
http://dx.doi.org/10.7554/eLife.71656
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author Kroupova, Alena
Ackle, Fabian
Asanović, Igor
Weitzer, Stefan
Boneberg, Franziska M
Faini, Marco
Leitner, Alexander
Chui, Alessia
Aebersold, Ruedi
Martinez, Javier
Jinek, Martin
author_facet Kroupova, Alena
Ackle, Fabian
Asanović, Igor
Weitzer, Stefan
Boneberg, Franziska M
Faini, Marco
Leitner, Alexander
Chui, Alessia
Aebersold, Ruedi
Martinez, Javier
Jinek, Martin
author_sort Kroupova, Alena
collection PubMed
description RtcB enzymes are RNA ligases that play essential roles in tRNA splicing, unfolded protein response, and RNA repair. In metazoa, RtcB functions as part of a five-subunit tRNA ligase complex (tRNA-LC) along with Ddx1, Cgi-99, Fam98B, and Ashwin. The human tRNA-LC or its individual subunits have been implicated in additional cellular processes including microRNA maturation, viral replication, DNA double-strand break repair, and mRNA transport. Here, we present a biochemical analysis of the inter-subunit interactions within the human tRNA-LC along with crystal structures of the catalytic subunit RTCB and the N-terminal domain of CGI-99. We show that the core of the human tRNA-LC is assembled from RTCB and the C-terminal alpha-helical regions of DDX1, CGI-99, and FAM98B, all of which are required for complex integrity. The N-terminal domain of CGI-99 displays structural homology to calponin-homology domains, and CGI-99 and FAM98B associate via their N-terminal domains to form a stable subcomplex. The crystal structure of GMP-bound RTCB reveals divalent metal coordination geometry in the active site, providing insights into its catalytic mechanism. Collectively, these findings shed light on the molecular architecture and mechanism of the human tRNA ligase complex and provide a structural framework for understanding its functions in cellular RNA metabolism.
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spelling pubmed-86681862021-12-15 Molecular architecture of the human tRNA ligase complex Kroupova, Alena Ackle, Fabian Asanović, Igor Weitzer, Stefan Boneberg, Franziska M Faini, Marco Leitner, Alexander Chui, Alessia Aebersold, Ruedi Martinez, Javier Jinek, Martin eLife Biochemistry and Chemical Biology RtcB enzymes are RNA ligases that play essential roles in tRNA splicing, unfolded protein response, and RNA repair. In metazoa, RtcB functions as part of a five-subunit tRNA ligase complex (tRNA-LC) along with Ddx1, Cgi-99, Fam98B, and Ashwin. The human tRNA-LC or its individual subunits have been implicated in additional cellular processes including microRNA maturation, viral replication, DNA double-strand break repair, and mRNA transport. Here, we present a biochemical analysis of the inter-subunit interactions within the human tRNA-LC along with crystal structures of the catalytic subunit RTCB and the N-terminal domain of CGI-99. We show that the core of the human tRNA-LC is assembled from RTCB and the C-terminal alpha-helical regions of DDX1, CGI-99, and FAM98B, all of which are required for complex integrity. The N-terminal domain of CGI-99 displays structural homology to calponin-homology domains, and CGI-99 and FAM98B associate via their N-terminal domains to form a stable subcomplex. The crystal structure of GMP-bound RTCB reveals divalent metal coordination geometry in the active site, providing insights into its catalytic mechanism. Collectively, these findings shed light on the molecular architecture and mechanism of the human tRNA ligase complex and provide a structural framework for understanding its functions in cellular RNA metabolism. eLife Sciences Publications, Ltd 2021-12-02 /pmc/articles/PMC8668186/ /pubmed/34854379 http://dx.doi.org/10.7554/eLife.71656 Text en © 2021, Kroupova et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Biochemistry and Chemical Biology
Kroupova, Alena
Ackle, Fabian
Asanović, Igor
Weitzer, Stefan
Boneberg, Franziska M
Faini, Marco
Leitner, Alexander
Chui, Alessia
Aebersold, Ruedi
Martinez, Javier
Jinek, Martin
Molecular architecture of the human tRNA ligase complex
title Molecular architecture of the human tRNA ligase complex
title_full Molecular architecture of the human tRNA ligase complex
title_fullStr Molecular architecture of the human tRNA ligase complex
title_full_unstemmed Molecular architecture of the human tRNA ligase complex
title_short Molecular architecture of the human tRNA ligase complex
title_sort molecular architecture of the human trna ligase complex
topic Biochemistry and Chemical Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8668186/
https://www.ncbi.nlm.nih.gov/pubmed/34854379
http://dx.doi.org/10.7554/eLife.71656
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