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Multivalent binding of p53 to the STAGA complex mediates coactivator recruitment after UV damage
Armin M Gamper1, Robert G Roeder
1Laboratory of Biochemistry and Molecular Biology, The Rockefeller University, New York, NY 10021, USA.
Abstract:
The recruitment of transcriptional coactivators, including histone modifying enzymes, is an important step in transcription regulation. A typical activator is thought to interact with several cofactors, presumably in a sequential manner. The common use of several cofactors raises the question of how activators achieve both cofactor selectivity and diversity. Human STAGA is a multiprotein complex with the acetyltransferase GCN5L as the catalytic subunit. Here, we first show, through RNA interference-mediated knock-down and chromatin immunoprecipitation assays, that GCN5 plays a role in p53-dependent gene activation. We then employ p53 mutagenesis, in vitro binding, protein-protein cross-linking, and chromatin immunoprecipitation assays to establish a novel role for the second p53 activation subdomain (AD2) in STAGA recruitment and, further, to demonstrate that optimal binding of STAGA to p53 involves interactions of STAGA subunits TAF9, GCN5, and ADA2b, respectively, with AD1, AD2, and carboxy-terminal domains of p53. These results provide concrete evidence for mediation of transcription factor binding to coactivator complexes through multiple interactions. Based on our data, we propose a cooperative and modular binding mode for the recruitment of coactivator complexes to promoters.
Insights
This study reveals how the STAGA complex binds to the p53 protein to regulate gene activation. Multiple interactions between p53 and STAGA subunits ensure precise cofactor recruitment for transcription.
Area of Science:
- Molecular Biology
- Gene Regulation
- Epigenetics
Background:
- Transcriptional coactivators, such as histone modifiers, are crucial for gene transcription.
- Activator proteins often interact with multiple cofactors sequentially, raising questions about selectivity and diversity.
- The human STAGA complex, containing GCN5L, is involved in transcription regulation.
Purpose of the Study:
- To investigate the role of GCN5 in p53-dependent gene activation.
- To elucidate the mechanism of STAGA complex recruitment to p53.
- To identify specific interactions between p53 domains and STAGA subunits.
Main Methods:
- RNA interference-mediated knock-down
- Chromatin immunoprecipitation assays
- p53 mutagenesis
- In vitro binding assays
- Protein-protein cross-linking
Main Results:
- GCN5 is confirmed to play a role in p53-dependent gene activation.
- The second p53 activation subdomain (AD2) is essential for STAGA recruitment.
- STAGA subunits TAF9, GCN5, and ADA2b interact with p53's AD1, AD2, and C-terminal domains, respectively.
- Multiple interactions mediate STAGA binding to p53.
Conclusions:
- A novel role for p53 AD2 in STAGA recruitment is established.
- Optimal STAGA binding to p53 involves specific subunit interactions.
- A cooperative and modular binding model for coactivator complex recruitment is proposed.
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