Literature DB >> 22849406

Characterization of the interactions of mammalian RNA polymerase I associated proteins PAF53 and PAF49.

Yvonne Penrod1, Katrina Rothblum, Lawrence I Rothblum.   

Abstract

Masami Muramatsu's laboratory demonstrated the critical role of RNA polymerase I (Pol I)-associated factor PAF53 in mammalian rRNA transcription. They have also identified a second polymerase associated factor, PAF49. Both PAF49 and PAF53 copurify with that fraction of the RNA polymerase I molecules that can function in transcription initiation in vitro. PAF49 and PAF53 are the mammalian homologues of two subunits of yeast RNA polymerase I, A34.5 and A49, that form a TFIIF-related subcomplex in yeast RNA polymerase I. In light of those publications, we investigated the interactions between various deletion and substitution mutants of mammalian PAF49 and PAF53 with the purpose of identifying those domains of the mammalian proteins that interact. Comparison of our results with structural studies on yeast A34.5 and A49 demonstrates that the yeast and mammalian proteins may in fact share structural similarities. In fact, the deletion mutagenesis data confirmed and extended the structural studies. For example, amino acids 41-86 of PAF49 were sufficient to provide the basis for heterodimerization. In silico structural analysis predicted that this region could assume a structure similar to the homologous region of yeast A34.5. Those similarities are insufficient, by themselves, for the proteins to form interspecific heterodimers. However, substitution of amino acids 52-98 of yeast A34.5 with amino acids 41-86 of mammalian PAF49 resulted in a protein that could heterodimerize with mouse PAF53.

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Year:  2012        PMID: 22849406      PMCID: PMC3426042          DOI: 10.1021/bi300408q

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  47 in total

1.  Identification of a mammalian RNA polymerase I holoenzyme containing components of the DNA repair/replication system.

Authors:  R D Hannan; A Cavanaugh; W M Hempel; T Moss; L Rothblum
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2.  Structures of complete RNA polymerase II and its subcomplex, Rpb4/7.

Authors:  Karim-Jean Armache; Simone Mitterweger; Anton Meinhart; Patrick Cramer
Journal:  J Biol Chem       Date:  2004-12-09       Impact factor: 5.157

3.  Growth factor signaling regulates elongation of RNA polymerase I transcription in mammals via UBF phosphorylation and r-chromatin remodeling.

Authors:  Victor Stefanovsky; Frédéric Langlois; Thérèse Gagnon-Kugler; Larry I Rothblum; Tom Moss
Journal:  Mol Cell       Date:  2006-03-03       Impact factor: 17.970

4.  Selection of transfected mammalian cells.

Authors:  Richard Mortensen; Jonathan D Chesnut; James P Hoeffler; Robert E Kingston
Journal:  Curr Protoc Mol Biol       Date:  2003-05

5.  Functional architecture of RNA polymerase I.

Authors:  Claus-D Kuhn; Sebastian R Geiger; Sonja Baumli; Marco Gartmann; Jochen Gerber; Stefan Jennebach; Thorsten Mielke; Herbert Tschochner; Roland Beckmann; Patrick Cramer
Journal:  Cell       Date:  2007-12-28       Impact factor: 41.582

6.  Regulation of ribosomal DNA transcription by insulin.

Authors:  K M Hannan; L I Rothblum; L S Jefferson
Journal:  Am J Physiol       Date:  1998-07

7.  Mitotic phosphorylation of the TBP-containing factor SL1 represses ribosomal gene transcription.

Authors:  A Kuhn; A Vente; M Dorée; I Grummt
Journal:  J Mol Biol       Date:  1998-11-20       Impact factor: 5.469

8.  Affinity purification of mammalian RNA polymerase I. Identification of an associated kinase.

Authors:  R D Hannan; W M Hempel; A Cavanaugh; T Arino; S I Dimitrov; T Moss; L Rothblum
Journal:  J Biol Chem       Date:  1998-01-09       Impact factor: 5.157

9.  Mechanism of repression of RNA polymerase I transcription by the retinoblastoma protein.

Authors:  R Voit; K Schäfer; I Grummt
Journal:  Mol Cell Biol       Date:  1997-08       Impact factor: 4.272

10.  RNA polymerase I-specific subunit CAST/hPAF49 has a role in the activation of transcription by upstream binding factor.

Authors:  Kostya I Panov; Tatiana B Panova; Olivier Gadal; Kaori Nishiyama; Takashi Saito; Jackie Russell; Joost C B M Zomerdijk
Journal:  Mol Cell Biol       Date:  2006-07       Impact factor: 4.272

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  5 in total

1.  PAF53 is essential in mammalian cells: CRISPR/Cas9 fails to eliminate PAF53 expression.

Authors:  Lawrence I Rothblum; Katrina Rothblum; Eugenie Chang
Journal:  Gene       Date:  2016-12-29       Impact factor: 3.688

2.  Conditional depletion of the RNA polymerase I subunit PAF53 reveals that it is essential for mitosis and enables identification of functional domains.

Authors:  Rachel McNamar; Zakaria Abu-Adas; Katrina Rothblum; Bruce A Knutson; Lawrence I Rothblum
Journal:  J Biol Chem       Date:  2019-11-14       Impact factor: 5.157

Review 3.  TFIIB-related factors in RNA polymerase I transcription.

Authors:  Bruce A Knutson; Steven Hahn
Journal:  Biochim Biophys Acta       Date:  2012-08-30

4.  Regulation of the association of the PAF53/PAF49 heterodimer with RNA polymerase I.

Authors:  Yvonne Penrod; Katrina Rothblum; Alice Cavanaugh; Lawrence I Rothblum
Journal:  Gene       Date:  2014-09-16       Impact factor: 3.688

Review 5.  The Mammalian and Yeast A49 and A34 Heterodimers: Homologous but Not the Same.

Authors:  Rachel McNamar; Katrina Rothblum; Lawrence I Rothblum
Journal:  Genes (Basel)       Date:  2021-04-22       Impact factor: 4.096

  5 in total

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