Literature DB >> 22696218

TFIID TAF6-TAF9 complex formation involves the HEAT repeat-containing C-terminal domain of TAF6 and is modulated by TAF5 protein.

Elisabeth Scheer1, Frédéric Delbac, Laszlo Tora, Dino Moras, Christophe Romier.   

Abstract

The general transcription factor TFIID recognizes specifically the core promoter of genes transcribed by eukaryotic RNA polymerase II, nucleating the assembly of the preinitiation complex at the transcription start site. However, the understanding in molecular terms of TFIID assembly and function remains poorly understood. Histone fold motifs have been shown to be extremely important for the heterodimerization of many TFIID subunits. However, these subunits display several evolutionary conserved noncanonical features when compared with histones, including additional regions whose role is unknown. Here we show that the conserved additional C-terminal region of TFIID subunit TAF6 can be divided into two domains: a small middle domain (TAF6M) and a large C-terminal domain (TAF6C). Our crystal structure of the TAF6C domain from Antonospora locustae at 1.9 Å resolution reveals the presence of five conserved HEAT repeats. Based on these data, we designed several mutants that were introduced into full-length human TAF6. Surprisingly, the mutants affect the interaction between TAF6 and TAF9, suggesting that the formation of the complex between these two TFIID subunits do not only depend on their histone fold motifs. In addition, the same mutants affect even more strongly the interaction between TAF6 and TAF9 in the context of a TAF5-TAF6-TAF9 complex. Expression of these mutants in HeLa cells reveals that most of them are unstable, suggesting their poor incorporation within endogenous TFIID. Taken together, our results suggest that the conserved additional domains in histone fold-containing subunits of TFIID and of co-activator SAGA are important for the assembly of these complexes.

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Year:  2012        PMID: 22696218      PMCID: PMC3431708          DOI: 10.1074/jbc.M112.379206

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  53 in total

Review 1.  The histone fold is a key structural motif of transcription factor TFIID.

Authors:  Y G Gangloff; C Romier; S Thuault; S Werten; I Davidson
Journal:  Trends Biochem Sci       Date:  2001-04       Impact factor: 13.807

2.  Structure and function of a human TAFII250 double bromodomain module.

Authors:  R H Jacobson; A G Ladurner; D S King; R Tjian
Journal:  Science       Date:  2000-05-26       Impact factor: 47.728

3.  Histone folds mediate selective heterodimerization of yeast TAF(II)25 with TFIID components yTAF(II)47 and yTAF(II)65 and with SAGA component ySPT7.

Authors:  Y G Gangloff; S L Sanders; C Romier; D Kirschner; P A Weil; L Tora; I Davidson
Journal:  Mol Cell Biol       Date:  2001-03       Impact factor: 4.272

4.  Identification of hTAF(II)80 delta links apoptotic signaling pathways to transcription factor TFIID function.

Authors:  B Bell; E Scheer; L Tora
Journal:  Mol Cell       Date:  2001-09       Impact factor: 17.970

Review 5.  Comparison of ARM and HEAT protein repeats.

Authors:  M A Andrade; C Petosa; S I O'Donoghue; C W Müller; P Bork
Journal:  J Mol Biol       Date:  2001-05-25       Impact factor: 5.469

6.  The TFIID components human TAF(II)140 and Drosophila BIP2 (TAF(II)155) are novel metazoan homologues of yeast TAF(II)47 containing a histone fold and a PHD finger.

Authors:  Y G Gangloff; J C Pointud; S Thuault; L Carré; C Romier; S Muratoglu; M Brand; L Tora; J L Couderc; I Davidson
Journal:  Mol Cell Biol       Date:  2001-08       Impact factor: 4.272

7.  The human TFIID components TAF(II)135 and TAF(II)20 and the yeast SAGA components ADA1 and TAF(II)68 heterodimerize to form histone-like pairs.

Authors:  Y G Gangloff; S Werten; C Romier; L Carré; O Poch; D Moras; I Davidson
Journal:  Mol Cell Biol       Date:  2000-01       Impact factor: 4.272

8.  Genome sequence and gene compaction of the eukaryote parasite Encephalitozoon cuniculi.

Authors:  M D Katinka; S Duprat; E Cornillot; G Méténier; F Thomarat; G Prensier; V Barbe; E Peyretaillade; P Brottier; P Wincker; F Delbac; H El Alaoui; P Peyret; W Saurin; M Gouy; J Weissenbach; C P Vivarès
Journal:  Nature       Date:  2001-11-22       Impact factor: 49.962

9.  A histone fold TAF octamer within the yeast TFIID transcriptional coactivator.

Authors:  W Selleck; R Howley; Q Fang; V Podolny; M G Fried; S Buratowski; S Tan
Journal:  Nat Struct Biol       Date:  2001-08

10.  Synergistic transcriptional activation by TATA-binding protein and hTAFII28 requires specific amino acids of the hTAFII28 histone fold.

Authors:  A C Lavigne; Y G Gangloff; L Carré; G Mengus; C Birck; O Poch; C Romier; D Moras; I Davidson
Journal:  Mol Cell Biol       Date:  1999-07       Impact factor: 4.272

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  17 in total

1.  Using RNA inverse folding to identify IRES-like structural subdomains.

Authors:  Ivan Dotu; Gloria Lozano; Peter Clote; Encarnacion Martinez-Salas
Journal:  RNA Biol       Date:  2013-11-04       Impact factor: 4.652

2.  Structure, assembly and dynamics of macromolecular complexes by single particle cryo-electron microscopy.

Authors:  Alexandre Durand; Gabor Papai; Patrick Schultz
Journal:  J Nanobiotechnology       Date:  2013-12-10       Impact factor: 10.435

Review 3.  Structural basis of transcription initiation by RNA polymerase II.

Authors:  Sarah Sainsbury; Carrie Bernecky; Patrick Cramer
Journal:  Nat Rev Mol Cell Biol       Date:  2015-02-18       Impact factor: 94.444

4.  The architecture of human general transcription factor TFIID core complex.

Authors:  Christoph Bieniossek; Gabor Papai; Christiane Schaffitzel; Frederic Garzoni; Maxime Chaillet; Elisabeth Scheer; Petros Papadopoulos; Laszlo Tora; Patrick Schultz; Imre Berger
Journal:  Nature       Date:  2013-01-06       Impact factor: 49.962

5.  The TAF9 C-terminal conserved region domain is required for SAGA and TFIID promoter occupancy to promote transcriptional activation.

Authors:  Malika Saint; Sonal Sawhney; Ishani Sinha; Rana Pratap Singh; Rashmi Dahiya; Anushikha Thakur; Rahul Siddharthan; Krishnamurthy Natarajan
Journal:  Mol Cell Biol       Date:  2014-02-18       Impact factor: 4.272

6.  Functional Analysis of the Hsp93/ClpC Chaperone at the Chloroplast Envelope.

Authors:  Úrsula Flores-Pérez; Jocelyn Bédard; Noriaki Tanabe; Panagiotis Lymperopoulos; Adrian K Clarke; Paul Jarvis
Journal:  Plant Physiol       Date:  2015-11-19       Impact factor: 8.340

Review 7.  Cryo-EM in the study of challenging systems: the human transcription pre-initiation complex.

Authors:  Eva Nogales; Robert K Louder; Yuan He
Journal:  Curr Opin Struct Biol       Date:  2016-09-30       Impact factor: 6.809

8.  Fine mapping of QTL conferring Cercospora leaf spot disease resistance in mungbean revealed TAF5 as candidate gene for the resistance.

Authors:  Chutintorn Yundaeng; Prakit Somta; Jingbin Chen; Xingxing Yuan; Sompong Chankaew; Xin Chen
Journal:  Theor Appl Genet       Date:  2020-11-13       Impact factor: 5.699

Review 9.  Towards a mechanistic understanding of core promoter recognition from cryo-EM studies of human TFIID.

Authors:  Eva Nogales; Avinash B Patel; Robert K Louder
Journal:  Curr Opin Struct Biol       Date:  2017-06-15       Impact factor: 6.809

Review 10.  Recent insights into the structure of TFIID, its assembly, and its binding to core promoter.

Authors:  Avinash B Patel; Basil J Greber; Eva Nogales
Journal:  Curr Opin Struct Biol       Date:  2019-11-18       Impact factor: 6.809

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