2005BiochemistryRequires access

Relative Affinities of DNA Sequences for the Histone Octamer Depend Strongly upon Both the Temperature and Octamer Concentration

Chen‐Yi Wu, Andrew Travers

Open publisher page 24 citations

Abstract

Using a novel competition assay to determine the relative strength of different histone octamer-binding sites, we have compared three natural and two synthetic sites. We show that the relative affinities of these sites for the histone octamer depend upon both the temperature and octamer concentration. In particular, under certain conditions, a natural octamer-binding site from a yeast promoter outcompetes a synthetic sequence of comparable affinity to the strongest previously described positioning sequence. Under other conditions, this synthetic sequence is the preferred octamer ligand. We infer that sequence selection by the histone octamer depends strongly upon both the sequence-dependent anisotropy of DNA bending and on DNA deformability and that these parameters may contribute differently to nucleosome formation. These findings indicate that previous studies designed to identify strong octamer-binding sites may fail to select some natural strong binding sites.

About this research paper

What this paper is about

Using a novel competition assay to determine the relative strength of different histone octamer-binding sites, we have compared three natural and two synthetic sites. We show that the relative affinities of these sites for the histone octamer depend upon both the temperature and octamer concentration. In particular, under certain conditions, a natural octamer-binding site from a yeast promoter outcompetes a synthetic sequence of comparable affinity to the strongest previously described positioning sequence. Under other conditions, this synthetic sequence is the preferred octamer ligand. We infer that sequence selection by the histone octamer depends strongly upon both the sequence-dependent anisotropy of DNA bending and on DNA deformability and that these parameters may contribute differently to nucleosome formation. These findings indicate that previous studies designed to identify strong octamer-binding sites may fail to select some natural strong binding sites.

Why it matters

OpenAlex reports 24 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Using a novel competition assay to determine the relative strength of different histone octamer-binding sites, we have compared three natural and two synthetic sites. We show that the relative affinities of these sites for the histone octamer depend upon both the temperature and octamer concentration. In particular, under certain conditions, a natural octamer-binding site from a yeast promoter outcompetes a synthetic sequence of comparable affinity to the strongest previously described positioning sequence. Under other conditions, this synthetic sequence is the preferred octamer ligand. We infer that sequence selection by the histone octamer depends strongly upon both the sequence-dependent anisotropy of DNA bending and on DNA deformability and that these parameters may contribute differently to nucleosome formation. These findings indicate that previous studies designed to identify strong octamer-binding sites may fail to select some natural strong binding sites.

Key concepts: Histone octamer, Nucleosome, Histone, Affinities, Sequence (biology), DNA, Chromatosome, Biology

Related papers

Back to paper searchBrowse research topicsOriginal source
Relative Affinities of DNA Sequences for the Histone Octamer Depend Strongly upon Both the Temperature and Octamer Concentration — Research Paper | ScholarLens