Literature DB >> 25441028

Mapping the deubiquitination module within the SAGA complex.

Alexandre Durand, Jacques Bonnet, Marjorie Fournier, Virginie Chavant, Patrick Schultz.   

Abstract

The molecular organization of the yeast transcriptional coactivator Spt-Ada-Gcn5 acetyltransferase (SAGA) was analyzed by single-particle electron microscopy. Complete or partial deletion of the Sgf73 subunit disconnects the deubiquitination (DUB) module from SAGA and favors in our conditions the cleavage of the C-terminal ends of the Spt7 subunit and the loss of the Spt8 subunit. The structural comparison of the wild-type SAGA with two deletion mutants positioned the DUB module and enabled the fitting of the available atomic models. The localization of the DUB module close to Gcn5 defines a chromatin-binding interface within SAGA, which could be demonstrated by the binding of nucleosome core particles. The TATA-box binding protein (TBP)-interacting subunit Spt8 was found to be located close to the DUB but in a different domain than Spt3, also known to contact TBP. A flexible protein arm brings both subunits close enough to interact simultaneously with TBP.

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Year:  2014        PMID: 25441028     DOI: 10.1016/j.str.2014.07.017

Source DB:  PubMed          Journal:  Structure        ISSN: 0969-2126            Impact factor:   5.006


  21 in total

1.  Structural basis for histone H2B deubiquitination by the SAGA DUB module.

Authors:  Michael T Morgan; Mahmood Haj-Yahya; Alison E Ringel; Prasanthi Bandi; Ashraf Brik; Cynthia Wolberger
Journal:  Science       Date:  2016-02-12       Impact factor: 47.728

Review 2.  Recognition of ubiquitinated nucleosomes.

Authors:  Michael T Morgan; Cynthia Wolberger
Journal:  Curr Opin Struct Biol       Date:  2016-12-04       Impact factor: 6.809

3.  TORC1 and TORC2 converge to regulate the SAGA co-activator in response to nutrient availability.

Authors:  Thomas Laboucarié; Dylane Detilleux; Ricard A Rodriguez-Mias; Céline Faux; Yves Romeo; Mirita Franz-Wachtel; Karsten Krug; Boris Maček; Judit Villén; Janni Petersen; Dominique Helmlinger
Journal:  EMBO Rep       Date:  2017-10-27       Impact factor: 8.807

4.  Distinct requirements of linker DNA and transcriptional activators in promoting SAGA-mediated nucleosome acetylation.

Authors:  Chitvan Mittal; Sannie J Culbertson; Michael A Shogren-Knaak
Journal:  J Biol Chem       Date:  2018-07-27       Impact factor: 5.157

5.  Conformational flexibility and subunit arrangement of the modular yeast Spt-Ada-Gcn5 acetyltransferase complex.

Authors:  Dheva Setiaputra; James D Ross; Shan Lu; Derrick T Cheng; Meng-Qiu Dong; Calvin K Yip
Journal:  J Biol Chem       Date:  2015-02-20       Impact factor: 5.157

Review 6.  Targeting the SAGA and ATAC Transcriptional Coactivator Complexes in MYC-Driven Cancers.

Authors:  Lisa Maria Mustachio; Jason Roszik; Aimee Farria; Sharon Y R Dent
Journal:  Cancer Res       Date:  2020-02-24       Impact factor: 12.701

Review 7.  Building a KATalogue of acetyllysine targeting and function.

Authors:  Michael Downey; Kristin Baetz
Journal:  Brief Funct Genomics       Date:  2015-10-27       Impact factor: 4.241

8.  Direct screening for chromatin status on DNA barcodes in yeast delineates the regulome of H3K79 methylation by Dot1.

Authors:  Hanneke Vlaming; Thom M Molenaar; Tibor van Welsem; Deepani W Poramba-Liyanage; Desiree E Smith; Arno Velds; Liesbeth Hoekman; Tessy Korthout; Sjoerd Hendriks; A F Maarten Altelaar; Fred van Leeuwen
Journal:  Elife       Date:  2016-12-06       Impact factor: 8.140

9.  SAGA mediates transcription from the TATA-like element independently of Taf1p/TFIID but dependent on core promoter structures in Saccharomyces cerevisiae.

Authors:  Kiyoshi Watanabe; Tetsuro Kokubo
Journal:  PLoS One       Date:  2017-11-27       Impact factor: 3.240

Review 10.  Sharing the SAGA.

Authors:  Dominique Helmlinger; László Tora
Journal:  Trends Biochem Sci       Date:  2017-09-27       Impact factor: 13.807

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