Initial studies have been performed on transcription factor 1 (TF1), a type II DNA binding protein (DBPII) which displays a novel binding mode characterized by two beta-ribbon""""""""arms"""""""" interacting with the DNA. Completed studies include the determination of the solution structure of wild-type TF1 and of a DNA sequence from the genome of phage SPO1, containing the unusual base hydroxymethyluracil (HmU), which has been shown to bind preferentially to TF1. The solution structure of TF1 exhibits similarities to the structure of HU (another DBP II), but also some differences which may explain the difference in binding specificities for these homologous proteins. The structure of the beta-ribbon arms in TF1 is more defined in TF1 than in HU. Investigations on G15/I32-TF1 (a TF1 with increased DNA affinity) are proposed, including comparison of the solution structures of the mutant and wild-type protein, and their complexes with HmU-DNA. This mutant also demonstrates increased affinity when binding to DNA with two loops nine base pairs apart, which has been attributed to increased flexibility of the DNA.
The aim of these investigations is to develop a theoretical understanding of the preference of TF1 for HmU-containing DNA and the role of DNA flexibility in binding. Additional transcription factors gp33 and gp45 will be studied. Gp33 is a phage-encoded RNA polymerase-binding protein. After the solution structure is determined, the conformation of gp33 upon binding RNA polymerase will be studied. Gp45 is a transcription enhancing protein that binds DNA and is proposed to interact with gp33. NOESY spectra will be used to identify intramolecular contacts and generate structural models. The models will help to improve the understanding of the course of viral infection. Homo- and heteronuclear NMR methods applied to single- and double-labeled proteins will form the basis of these investigations.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM040635-09
Application #
2608881
Study Section
Molecular and Cellular Biophysics Study Section (BBCA)
Project Start
1988-07-01
Project End
2000-11-30
Budget Start
1997-12-01
Budget End
1998-11-30
Support Year
9
Fiscal Year
1998
Total Cost
Indirect Cost
Name
University of California San Diego
Department
Chemistry
Type
Schools of Arts and Sciences
DUNS #
077758407
City
La Jolla
State
CA
Country
United States
Zip Code
92093
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Vu, H M; Pepe, A; Mayol, L et al. (1999) NMR-derived solution structure of a 17mer hydroxymethyluracil-containing DNA. Nucleic Acids Res 27:4143-50
Vu, H M; Pasternack, L B; Kearns, D R (1999) Specificity of hydroxylmethyluracil-containing DNA for transcription factor 1: structural insights. Biopolymers 52:57-63
Silva, M V; Pasternack, L B; Kearns, D R (1997) Nuclear magnetic resonance-based model of a TF1/HmU-DNA complex. Arch Biochem Biophys 348:255-61
Pasternack, L B; Bramham, J; Mayol, L et al. (1996) 1H NMR studies of the 5-(hydroxymethyl)-2'-deoxyuridine containing TF1 binding site. Nucleic Acids Res 24:2740-5
Jia, X; Grove, A; Ivancic, M et al. (1996) Structure of the Bacillus subtilis phage SPO1-encoded type II DNA-binding protein TF1 in solution. J Mol Biol 263:259-68
Hsu, V L; Jia, X; Kearns, D R (1995) Multidimensional NMR spectroscopy of DNA-binding proteins: structure and function of a transcription factor. Toxicol Lett 82-83:577-89
Jia, X; Reisman, J M; Hsu, V L et al. (1994) Proton and nitrogen NMR sequence-specific assignments and secondary structure determination of the Bacillus subtilis SPO1-encoded transcription factor 1. Biochemistry 33:8842-52
Brown, D R; Kurz, M; Kearns, D R et al. (1994) Formation of multiple complexes between actinomycin D and a DNA hairpin: structural characterization by multinuclear NMR. Biochemistry 33:651-64
Reisman, J M; Hsu, V L; Jariel-Encontre, I et al. (1993) A 1H-NMR study of the transcription factor 1 from Bacillus subtilis phage SPO1 by selective 2H-labeling. Complete assignment and structural analysis of the aromatic resonances for a 22-kDa homodimer. Eur J Biochem 213:865-73

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