Multiple mechanisms confining RNA polymerase II ubiquitylation to polymerases undergoing transcriptional arrest Journal Article


Authors: Somesh, B. P.; Reid, J.; Liu, W. F.; Søgaard, T. M. M.; Erdjument-Bromage, H.; Tempst, P.; Svejstrup, J. Q.
Article Title: Multiple mechanisms confining RNA polymerase II ubiquitylation to polymerases undergoing transcriptional arrest
Abstract: In order to study mechanisms and regulation of RNA polymerase II (RNAPII) ubiquitylation and degradation, highly purified factors were used to reconstitute RNAPII ubiquitylation in vitro. We show that arrested RNAPII elongation complexes are the preferred substrates for ubiquitylation. Accordingly, not only DNA-damage-dependent but also DNA-damage-independent transcriptional arrest results in RNAPII ubiquitylation in vivo. Def1, known to be required for damage-induced degradation of RNAPII, stimulates ubiquitylation of RNAPII only in an elongation complex. Ubiquitylation of RNAPII is dependent on its C-terminal repeat domain (CTD). Moreover, CTD phosphorylation at serine 5, a hallmark of the initiating polymerase, but not at serine 2, a hallmark of the elongating polymerase, completely inhibits ubiquitylation. In agreement with this, ubiquitylated RNAPII is hypophosphorylated at serine 5 in vivo, and mutation of the serine 5 phosphatase SSU72 inhibits RNAPII degradation. These results identify several mechanisms that confine ubiquitylation of RNAPII to the forms of the enzyme that arrest during elongation. Copyright ©2005 by Elsevier Inc.
Keywords: unclassified drug; gene mutation; ubiquitin; chromosomal proteins, non-histone; dna damage; phosphatase; serine; carboxy terminal sequence; enzyme degradation; protein; transcription, genetic; phosphorylation; ubiquitination; saccharomyces cerevisiae; saccharomyces cerevisiae proteins; rna polymerase ii; rna transcription; phosphoprotein phosphatase; elongation factor; cell-free system; def1 protein; serine 5 phosphatase
Journal Title: Cell
Volume: 121
Issue: 6
ISSN: 0092-8674
Publisher: Cell Press  
Date Published: 2005-06-17
Start Page: 913
End Page: 923
Language: English
DOI: 10.1016/j.cell.2005.04.010
PUBMED: 15960978
PROVIDER: scopus
DOI/URL:
Notes: --- - "Cited By (since 1996): 94" - "Export Date: 24 October 2012" - "CODEN: CELLB" - "Source: Scopus"
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  1. Paul J Tempst
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