<--- Back to Details
First PageDocument Content
Biology / Protein domains / Structural biology / Transcription factors / TRANSFAC / DNA-binding domain / DNA-binding protein / BZIP domain / Leucine zipper / Helix-turn-helix / Basic helix-loop-helix / DNA binding site
Date: 2004-12-26 23:42:01
Biology
Protein domains
Structural biology
Transcription factors
TRANSFAC
DNA-binding domain
DNA-binding protein
BZIP domain
Leucine zipper
Helix-turn-helix
Basic helix-loop-helix
DNA binding site

Genome Informatics 15(2): 276–Systematic DNA-Binding Domain Classification of Transcription Factors

Add to Reading List

Source URL: www.jsbi.org

Download Document from Source Website

File Size: 205,58 KB

Share Document on Facebook

Similar Documents

PROTOCOL  Universal protein-binding microarrays for the comprehensive characterization of the DNA-binding specificities of transcription factors Michael F Berger1,2 & Martha L Bulyk1–4

PROTOCOL Universal protein-binding microarrays for the comprehensive characterization of the DNA-binding specificities of transcription factors Michael F Berger1,2 & Martha L Bulyk1–4

DocID: 1vjhs - View Document

Modeling protein–DNA binding via high-throughput in vitro technologies

Modeling protein–DNA binding via high-throughput in vitro technologies

DocID: 1uQrx - View Document

Regulatory Sequence Analysis  Discovering phylogenetic footprints in bacterial promoters  DNA-protein binding interface

Regulatory Sequence Analysis Discovering phylogenetic footprints in bacterial promoters DNA-protein binding interface

DocID: 1uw7K - View Document

Technical Note: illumina® sequencing  ChIP-Seq Data Analysis ChIP-Seq is a powerful method to identify genome-wide DNA binding sites for a protein of interest. This technical note describes a simple approach to building

Technical Note: illumina® sequencing ChIP-Seq Data Analysis ChIP-Seq is a powerful method to identify genome-wide DNA binding sites for a protein of interest. This technical note describes a simple approach to building

DocID: 1u3Ve - View Document

Genome-wide prediction of minor-groove electrostatic potential enables biophysical modeling of protein–DNA binding

Genome-wide prediction of minor-groove electrostatic potential enables biophysical modeling of protein–DNA binding

DocID: 1tZ3d - View Document