Nearest-neighbor non-additivity versus long-range non-additivity in TATA-box structure and its implications for TBP-binding mechanism
Open Access
- 18 June 2007
- journal article
- research article
- Published by Oxford University Press (OUP) in Nucleic Acids Research
- Vol. 35 (13) , 4409-4419
- https://doi.org/10.1093/nar/gkm451
Abstract
TBP recognizes its target sites, TATA boxes, by recognizing their sequence-dependent structure and flexibility. Studying this mode of TATA-box recognition, termed ‘indirect readout’, is important for elucidating the binding mechanism in this system, as well as for developing methods to locate new binding sites in genomic DNA. We determined the binding stability and TBP-induced TATA-box bending for consensus-like TATA boxes. In addition, we calculated the individual information score of all studied sequences. We show that various non-additive effects exist in TATA boxes, dependent on their structural properties. By several criterions, we divide TATA boxes to two main groups. The first group contains sequences with 3–4 consecutive adenines. Sequences in this group have a rigid context-independent cooperative structure, best described by a nearest-neighbor non-additive model. Sequences in the second group have a flexible, context-dependent conformation, which cannot be described by an additive model or by a nearest-neighbor non-additive model. Classifying TATA boxes by these and other structural rules clarifies the different recognition pathways and binding mechanisms used by TBP upon binding to different TATA boxes. We discuss the structural and evolutionary sources of the difficulties in predicting new binding sites by probabilistic weight-matrix methods for proteins in which indirect readout is dominant.Keywords
This publication has 53 references indexed in Scilit:
- A Systems Approach to Measuring the Binding Energy Landscapes of Transcription FactorsScience, 2007
- DNA microarray technologies for measuring protein–DNA interactionsCurrent Opinion in Biotechnology, 2006
- The Eukaryotic Promoter Database EPD: the impact of in silico primer extensionNucleic Acids Research, 2004
- A-Tract Polarity Dominate the Curvature in Flanking SequencesBiochemistry, 2003
- Signals for TBP/TATA box recognitionJournal of Molecular Biology, 2000
- DNA binding sites: representation and discoveryBioinformatics, 2000
- The Eukaryotic Promoter Database (EPD)Nucleic Acids Research, 2000
- TATA element recognition by the TATA box-binding protein has been conserved throughout evolutionGenes & Development, 1999
- Crystal structure of the nucleosome core particle at 2.8 Å resolutionNature, 1997
- DNA Bending is an Important Component of Site-specific Recognition by the TATA Binding ProteinJournal of Molecular Biology, 1995