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Indirect recognition in sequence-specific DNA binding by Escherichia coli integration host factor: the role of DNA deformation energy.
- Source :
-
The Journal of biological chemistry [J Biol Chem] 2006 Dec 22; Vol. 281 (51), pp. 39236-48. Date of Electronic Publication: 2006 Oct 11. - Publication Year :
- 2006
-
Abstract
- Integration host factor (IHF) is a bacterial histone-like protein whose primary biological role is to condense the bacterial nucleoid and to constrain DNA supercoils. It does so by binding in a sequence-independent manner throughout the genome. However, unlike other structurally related bacterial histone-like proteins, IHF has evolved a sequence-dependent, high affinity DNA-binding motif. The high affinity binding sites are important for the regulation of a wide range of cellular processes. A remarkable feature of IHF is that it employs an indirect readout mechanism to bind and wrap DNA at both the nonspecific and high affinity (sequence-dependent) DNA sites. In this study we assessed the contributions of pre-formed and protein-induced DNA conformations to the energetics of IHF binding. Binding energies determined experimentally were compared with energies predicted for the IHF-induced deformation of the DNA helix (DNA deformation energy) in the IHF-DNA complex. Combinatorial sets of de novo DNA sequences were designed to systematically evaluate the influence of sequence-dependent structural characteristics of the conserved IHF recognition elements of the consensus DNA sequence. We show that IHF recognizes pre-formed conformational characteristics of the consensus DNA sequence at high affinity sites, whereas at all other sites relative affinity is determined by the deformational energy required for nearest-neighbor base pairs to adopt the DNA structure of the bound DNA-IHF complex.
- Subjects :
- Amino Acid Motifs
Base Sequence
Binding Sites
Crystallography, X-Ray
DNA, Superhelical chemistry
Histones chemistry
Integration Host Factors metabolism
Models, Molecular
Models, Statistical
Molecular Sequence Data
Nucleic Acid Conformation
Regression Analysis
Thermodynamics
DNA chemistry
Escherichia coli metabolism
Integration Host Factors physiology
Subjects
Details
- Language :
- English
- ISSN :
- 0021-9258
- Volume :
- 281
- Issue :
- 51
- Database :
- MEDLINE
- Journal :
- The Journal of biological chemistry
- Publication Type :
- Academic Journal
- Accession number :
- 17035240
- Full Text :
- https://doi.org/10.1074/jbc.M606363200