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Evaluation of the DNA binding tendencies of the transition state regulator AbrB.

Publication ,  Journal Article
Bobay, BG; Benson, L; Naylor, S; Feeney, B; Clark, AC; Goshe, MB; Strauch, MA; Thompson, R; Cavanagh, J
Published in: Biochemistry
December 28, 2004

Global transition state regulator proteins represent one of the most diverse classes of prokaryotic transcription factors. One such transition state regulator, AbrB from Bacillus subtilis, is known to bind more than 60 gene targets yet displays specificity within this target set by binding each promoter with a different affinity. Microelectrospray ionization mass spectrometry (microESI-MS), circular dichroism, fluorescence, UV spectroscopy, and molecular modeling were used to elucidate differences among AbrB, DNA, and AbrB-DNA complexes. MicroESI-MS analysis of AbrB confirmed its stable macromolecular state as being tetrameric and verified the same stoichiometric state in complex with DNA targets. MicroESI-MS, circular dichroism, and fluorescence provided relative binding affinities for AbrB-DNA interactions in a qualitative manner. UV spectroscopy was used in a quantitative manner to determine solution phase dissociation constants for AbrB-DNA complexes. General DNA structural parameters for all known natural AbrB binding sequences were also studied and significant similarities in topological constraints (stretch, opening, and propeller twist) were observed. It is likely that these parameters contribute to the differential binding proclivities of AbrB. In addition to providing an improved understanding of transition state regulator-DNA binding properties and structural tendencies of target promoters, this comprehensive and corroborative spectroscopic study endorses the use of microESI-MS for rapidly ascertaining qualitative binding trends in noncovalent systems in a high-throughput manner.

Duke Scholars

Published In

Biochemistry

DOI

ISSN

0006-2960

Publication Date

December 28, 2004

Volume

43

Issue

51

Start / End Page

16106 / 16118

Location

United States

Related Subject Headings

  • Transcription Factors
  • Spectrometry, Mass, Electrospray Ionization
  • Protein Binding
  • Kinetics
  • DNA
  • Circular Dichroism
  • Biochemistry & Molecular Biology
  • Bacillus subtilis
  • 3404 Medicinal and biomolecular chemistry
  • 3205 Medical biochemistry and metabolomics
 

Citation

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Bobay, B. G., Benson, L., Naylor, S., Feeney, B., Clark, A. C., Goshe, M. B., … Cavanagh, J. (2004). Evaluation of the DNA binding tendencies of the transition state regulator AbrB. Biochemistry, 43(51), 16106–16118. https://doi.org/10.1021/bi048399h
Bobay, Benjamin G., Linda Benson, Stephen Naylor, Brett Feeney, A Clay Clark, Michael B. Goshe, Mark A. Strauch, Richele Thompson, and John Cavanagh. “Evaluation of the DNA binding tendencies of the transition state regulator AbrB.Biochemistry 43, no. 51 (December 28, 2004): 16106–18. https://doi.org/10.1021/bi048399h.
Bobay BG, Benson L, Naylor S, Feeney B, Clark AC, Goshe MB, et al. Evaluation of the DNA binding tendencies of the transition state regulator AbrB. Biochemistry. 2004 Dec 28;43(51):16106–18.
Bobay, Benjamin G., et al. “Evaluation of the DNA binding tendencies of the transition state regulator AbrB.Biochemistry, vol. 43, no. 51, Dec. 2004, pp. 16106–18. Pubmed, doi:10.1021/bi048399h.
Bobay BG, Benson L, Naylor S, Feeney B, Clark AC, Goshe MB, Strauch MA, Thompson R, Cavanagh J. Evaluation of the DNA binding tendencies of the transition state regulator AbrB. Biochemistry. 2004 Dec 28;43(51):16106–16118.
Journal cover image

Published In

Biochemistry

DOI

ISSN

0006-2960

Publication Date

December 28, 2004

Volume

43

Issue

51

Start / End Page

16106 / 16118

Location

United States

Related Subject Headings

  • Transcription Factors
  • Spectrometry, Mass, Electrospray Ionization
  • Protein Binding
  • Kinetics
  • DNA
  • Circular Dichroism
  • Biochemistry & Molecular Biology
  • Bacillus subtilis
  • 3404 Medicinal and biomolecular chemistry
  • 3205 Medical biochemistry and metabolomics