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In Vitro Characterization of Histone Chaperones using Analytical, Pull-Down and Chaperoning Assays
Published on: December 29, 2021
Investigation of the β-sheet interactions between dHP1 chromodomain and histone 3
Robyn J Eisert1, Sarah A Kennedy1, Marcey L Waters1
1Department of Chemistry, CB 3290, University of North Carolina, Chapel Hill, North Carolina 27599, United States.
Insights
Modifying histone tails and heterochromatin protein 1 (HP1) chromodomain interactions enhances gene silencing. This research explores sequence selectivity in these protein-protein interactions for potential chemical biology applications.
Area of Science:
- Biochemistry
- Molecular Biology
- Epigenetics
Background:
- Histone methylation, specifically on lysine 9 of histone H3 (H3 K9Me), is a key epigenetic mark.
- Heterochromatin protein 1 (HP1) from Drosophila binds H3 K9Me via its chromodomain, leading to gene silencing.
- The binding involves an aromatic cage and the formation of a three-stranded β-sheet between the histone tail and the chromodomain.
Purpose of the Study:
- To investigate the sequence selectivity of the dHP1 chromodomain for the histone H3 tail.
- To explore how mutations affecting β-sheet interactions influence binding affinity.
- To compare these interactions with other model systems and statistical studies.
Main Methods:
- Site-directed mutagenesis of key residues in both the histone H3 tail (Thr6) and the dHP1 chromodomain (Ala25, Asp62).
- Amino acid substitutions focused on residues with high β-sheet propensity and favorable side chain-side chain interactions.
- Assessment of binding affinity between wild-type and mutant proteins.
Main Results:
- Approximately 50% of chromodomain mutants exhibited equal or enhanced binding to the histone tail.
- Around 25% of histone tail mutants demonstrated tighter binding compared to the native sequence.
- Mutations impacting β-sheet interactions significantly altered binding selectivity.
Conclusions:
- The study provides novel insights into the sequence selectivity of dHP1 chromodomain-histone tail interactions.
- Findings highlight the importance of β-sheet-mediated protein-protein interactions.
- The results suggest the feasibility of designing specific histone-chromodomain pairs for chemical biology tools.
Abstract:
Methylated lysine 9 on the histone 3 (H3) tail recruits heterochromatin protein 1 from Drosophila (dHP1) via its chromodomain and results in gene silencing. The dHP1 chromodomain binds H3 K9Me3 with an aromatic cage surrounding the trimethyllysine. The sequence selectivity of binding comes from insertion of the histone tail between two β-strands of the chromodomain to form a three-stranded β-sheet. Herein, we investigated the sequence selectivity provided by the β-sheet interactions and how those interactions compare to other model systems. Residue Thr6 of the histone tail forms cross-strand interactions with Ala25 and Asp62 of the chromodomain. Each of these three residues was substituted for amino acids known to have high β-sheet propensities and/or to form favorable side chain-side chain (SC-SC) interactions in β-sheets, including hydrophobic, H-bonding, and aromatic interactions. We found that about 50% of the chromodomain mutants resulted in equal or tighter binding to the histone tail and about 25% of the histone tail mutants provided tighter binding compared to that of the native histone tail sequence. These studies provide novel insights into the sequence selectivity of the dHP1 chromodomain for the histone tail and relates the information gleaned from model systems and statistical studies to β-sheet-mediated protein-protein interactions. Moreover, this work suggests that the development of designer histone-chromodomain pairs for chemical biology applications is feasible.
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