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The Protein Interaction Network of the Human Transcription Machinery Reveals a Role for the Conserved GTPase RPAP4/GPN1 and Microtubule Assembly in Nuclear Import and Biogenesis of RNA Polymerase II

RNA polymerase II (RNAPII), the 12-subunit enzyme that synthesizes all mRNAs and several non-coding RNAs in eukaryotes, plays a central role in cell function. Although multiple proteins are known to regulate the activity of RNAPII during transcription, little is known about the machinery that contro...

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Autores principales: Forget, Diane, Lacombe, Andrée-Anne, Cloutier, Philippe, Al-Khoury, Racha, Bouchard, Annie, Lavallée-Adam, Mathieu, Faubert, Denis, Jeronimo, Célia, Blanchette, Mathieu, Coulombe, Benoit
Formato: Texto
Lenguaje:English
Publicado: The American Society for Biochemistry and Molecular Biology 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3002788/
https://www.ncbi.nlm.nih.gov/pubmed/20855544
http://dx.doi.org/10.1074/mcp.M110.003616
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author Forget, Diane
Lacombe, Andrée-Anne
Cloutier, Philippe
Al-Khoury, Racha
Bouchard, Annie
Lavallée-Adam, Mathieu
Faubert, Denis
Jeronimo, Célia
Blanchette, Mathieu
Coulombe, Benoit
author_facet Forget, Diane
Lacombe, Andrée-Anne
Cloutier, Philippe
Al-Khoury, Racha
Bouchard, Annie
Lavallée-Adam, Mathieu
Faubert, Denis
Jeronimo, Célia
Blanchette, Mathieu
Coulombe, Benoit
author_sort Forget, Diane
collection PubMed
description RNA polymerase II (RNAPII), the 12-subunit enzyme that synthesizes all mRNAs and several non-coding RNAs in eukaryotes, plays a central role in cell function. Although multiple proteins are known to regulate the activity of RNAPII during transcription, little is known about the machinery that controls the fate of the enzyme before or after transcription. We used systematic protein affinity purification coupled to mass spectrometry (AP-MS) to characterize the high resolution network of protein interactions of RNAPII in the soluble fraction of human cell extracts. Our analysis revealed that many components of this network participate in RNAPII biogenesis. We show here that RNAPII-associated protein 4 (RPAP4/GPN1) shuttles between the nucleus and the cytoplasm and regulates nuclear import of POLR2A/RPB1 and POLR2B/RPB2, the two largest subunits of RNAPII. RPAP4/GPN1 is a member of a newly discovered GTPase family that contains a unique and highly conserved GPN loop motif that we show is essential, in conjunction with its GTP-binding motifs, for nuclear localization of POLR2A/RPB1 in a process that also requires microtubule assembly. A model for RNAPII biogenesis is presented.
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spelling pubmed-30027882010-12-16 The Protein Interaction Network of the Human Transcription Machinery Reveals a Role for the Conserved GTPase RPAP4/GPN1 and Microtubule Assembly in Nuclear Import and Biogenesis of RNA Polymerase II Forget, Diane Lacombe, Andrée-Anne Cloutier, Philippe Al-Khoury, Racha Bouchard, Annie Lavallée-Adam, Mathieu Faubert, Denis Jeronimo, Célia Blanchette, Mathieu Coulombe, Benoit Mol Cell Proteomics Research RNA polymerase II (RNAPII), the 12-subunit enzyme that synthesizes all mRNAs and several non-coding RNAs in eukaryotes, plays a central role in cell function. Although multiple proteins are known to regulate the activity of RNAPII during transcription, little is known about the machinery that controls the fate of the enzyme before or after transcription. We used systematic protein affinity purification coupled to mass spectrometry (AP-MS) to characterize the high resolution network of protein interactions of RNAPII in the soluble fraction of human cell extracts. Our analysis revealed that many components of this network participate in RNAPII biogenesis. We show here that RNAPII-associated protein 4 (RPAP4/GPN1) shuttles between the nucleus and the cytoplasm and regulates nuclear import of POLR2A/RPB1 and POLR2B/RPB2, the two largest subunits of RNAPII. RPAP4/GPN1 is a member of a newly discovered GTPase family that contains a unique and highly conserved GPN loop motif that we show is essential, in conjunction with its GTP-binding motifs, for nuclear localization of POLR2A/RPB1 in a process that also requires microtubule assembly. A model for RNAPII biogenesis is presented. The American Society for Biochemistry and Molecular Biology 2010-12 2010-09-20 /pmc/articles/PMC3002788/ /pubmed/20855544 http://dx.doi.org/10.1074/mcp.M110.003616 Text en © 2010 by The American Society for Biochemistry and Molecular Biology, Inc. Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/) applies to Author Choice Articles
spellingShingle Research
Forget, Diane
Lacombe, Andrée-Anne
Cloutier, Philippe
Al-Khoury, Racha
Bouchard, Annie
Lavallée-Adam, Mathieu
Faubert, Denis
Jeronimo, Célia
Blanchette, Mathieu
Coulombe, Benoit
The Protein Interaction Network of the Human Transcription Machinery Reveals a Role for the Conserved GTPase RPAP4/GPN1 and Microtubule Assembly in Nuclear Import and Biogenesis of RNA Polymerase II
title The Protein Interaction Network of the Human Transcription Machinery Reveals a Role for the Conserved GTPase RPAP4/GPN1 and Microtubule Assembly in Nuclear Import and Biogenesis of RNA Polymerase II
title_full The Protein Interaction Network of the Human Transcription Machinery Reveals a Role for the Conserved GTPase RPAP4/GPN1 and Microtubule Assembly in Nuclear Import and Biogenesis of RNA Polymerase II
title_fullStr The Protein Interaction Network of the Human Transcription Machinery Reveals a Role for the Conserved GTPase RPAP4/GPN1 and Microtubule Assembly in Nuclear Import and Biogenesis of RNA Polymerase II
title_full_unstemmed The Protein Interaction Network of the Human Transcription Machinery Reveals a Role for the Conserved GTPase RPAP4/GPN1 and Microtubule Assembly in Nuclear Import and Biogenesis of RNA Polymerase II
title_short The Protein Interaction Network of the Human Transcription Machinery Reveals a Role for the Conserved GTPase RPAP4/GPN1 and Microtubule Assembly in Nuclear Import and Biogenesis of RNA Polymerase II
title_sort protein interaction network of the human transcription machinery reveals a role for the conserved gtpase rpap4/gpn1 and microtubule assembly in nuclear import and biogenesis of rna polymerase ii
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3002788/
https://www.ncbi.nlm.nih.gov/pubmed/20855544
http://dx.doi.org/10.1074/mcp.M110.003616
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