Molecular Basis for Gcn5/PCAF Histone Acetyltransferase Selectivity for Histone and Nonhistone Substrates,
- 21 November 2003
- journal article
- research article
- Published by American Chemical Society (ACS) in Biochemistry
- Vol. 42 (49) , 14366-14374
- https://doi.org/10.1021/bi035632n
Abstract
Histone acetyltransferase (HAT) proteins often exhibit a high degree of specificity for lysine-bearing protein substrates. We have previously reported on the structure of the Tetrahymena Gcn5 HAT protein (tGcn5) bound to its preferred histone H3 substrate, revealing the mode of substrate binding by the Gcn5/PCAF family of HAT proteins. Interestingly, the Gcn5/PCAF HAT family has a remarkable ability to acetylate lysine residues within diverse cognate sites such as those found around lysines 14, 8, and 320 of histones H3, H4, and p53, respectively. To investigate the molecular basis for this, we now report on the crystal structures of tGcn5 bound to 19-residue histone H4 and p53 peptides. A comparison of these structures with tGcn5 bound to histone H3 reveals that the Gcn5/PCAF HATs can accommodate divergent substrates by utilizing analogous interactions with the lysine target and two C-terminal residues with a related chemical nature, suggesting that these interactions play a general role in Gcn5/PCAF substrate binding selectivity. In contrast, while the histone H3 complex shows extensive interactions with tGcn5 and peptide residues N-terminal to the target lysine, the corresponding residues in histone H4 and p53 are disordered, suggesting that the N-terminal substrate region plays an important role in the enhanced affinity of the Gcn5/PCAF HAT proteins for histone H3. Together, these studies provide a framework for understanding the substrate selectivity of HAT proteins.Keywords
This publication has 10 references indexed in Scilit:
- Mutational Analysis of Conserved Residues in the GCN5 Family of Histone AcetyltransferasesJournal of Biological Chemistry, 2001
- The language of covalent histone modificationsNature, 2000
- HIV-1 Tat transcriptional activity is regulated by acetylationThe EMBO Journal, 1999
- Structure of Tetrahymena GCN5 bound to coenzyme A and a histone H3 peptideNature, 1999
- Crystal structure of the histone acetyltransferase domain of the human PCAF transcriptional regulator bound to coenzyme AThe EMBO Journal, 1999
- Overlapping but Distinct Patterns of Histone Acetylation by the Human Coactivators p300 and PCAF within Nucleosomal SubstratesJournal of Biological Chemistry, 1999
- DNA damage activates p53 through a phosphorylation–acetylation cascadeGenes & Development, 1998
- Activation of Integrated Provirus Requires Histone AcetyltransferaseJournal of Biological Chemistry, 1998
- Histone-like TAFs within the PCAF Histone Acetylase ComplexCell, 1998
- mof, a putative acetyl transferase gene related to the Tip60 and MOZ human genes and to the SAS genes of yeast, is required for dosage compensation in DrosophilaThe EMBO Journal, 1997