Specific Contributions of Histone Tails and Their Acetylation to the Mechanical Stability of Nucleosomes
Overview
Molecular Biology
Authors
Affiliations
The distinct contributions of histone tails and their acetylation to nucleosomal stability were examined by mechanical disruption of individual nucleosomes in a single chromatin fiber using an optical trap. Enzymatic removal of H2A/H2B tails primarily decreased the strength of histone-DNA interactions located approximately +/-36bp from the dyad axis of symmetry (off-dyad strong interactions), whereas removal of the H3/H4 tails played a greater role in regulating the total amount of DNA bound. Similarly, nucleosomes composed of histones acetylated to different degrees by the histone acetyltransferase p300 exhibited significant decreases in the off-dyad strong interactions and the total amount of DNA bound. Acetylation of H2A/H2B appears to play a particularly critical role in weakening the off-dyad strong interactions. Collectively, our results suggest that the destabilizing effects of tail acetylation may be due to elimination of specific key interactions in the nucleosome.
Dynamics of nucleosomes and chromatin fibers revealed by single-molecule measurements.
Nho S, Kim H BMB Rep. 2025; 58(1):24-32.
PMID: 39757199 PMC: 11788527.
Le T, Gao X, Ha Park S, Lee J, Inman J, Wang M STAR Protoc. 2024; 6(1):103500.
PMID: 39693223 PMC: 11719840. DOI: 10.1016/j.xpro.2024.103500.
Single-molecule states link transcription factor binding to gene expression.
Doughty B, Hinks M, Schaepe J, Marinov G, Thurm A, Rios-Martinez C Nature. 2024; 636(8043):745-754.
PMID: 39567683 DOI: 10.1038/s41586-024-08219-w.
Nanoscale 3D DNA tracing reveals the mechanism of self-organization of mitotic chromosomes.
Beckwith K, Brunner A, Morero N, Jungmann R, Ellenberg J bioRxiv. 2024; .
PMID: 39554202 PMC: 11565811. DOI: 10.1101/2024.10.28.620625.
Le T, Gao X, Ha Park S, Lee J, Inman J, Wang M bioRxiv. 2024; .
PMID: 39386467 PMC: 11463425. DOI: 10.1101/2024.09.25.614989.