Phage Ø29 Protein p6 Is in a Monomer−Dimer Equilibrium That Shifts to Higher Association States at the Millimolar Concentrations Found in Vivo

Protein p6 from Bacillus subtilis phage Ø29 (M r = 11 800) binds in vitro to DNA forming a large nucleoprotein complex in which the DNA wraps a multimeric protein core. The high intracellular abundance of protein p6 together with its ability to bind the whole Ø29 DNA in vitro strongly suggests that...

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Published inBiochemistry (Easton) Vol. 36; no. 39; pp. 11901 - 11908
Main Authors Abril, A. M, Salas, M, Andreu, J. M, Hermoso, J. M, Rivas, G
Format Journal Article
LanguageEnglish
Published American Chemical Society 30.09.1997
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Summary:Protein p6 from Bacillus subtilis phage Ø29 (M r = 11 800) binds in vitro to DNA forming a large nucleoprotein complex in which the DNA wraps a multimeric protein core. The high intracellular abundance of protein p6 together with its ability to bind the whole Ø29 DNA in vitro strongly suggests that it plays a role in viral genome organization. We have determined by sedimentation equilibrium analysis that protein p6 (1−100 μM range), in the absence of DNA, is in a monomer−dimer equilibrium, with an association constant (K 2) of ∼2 × 105 M-1. The intracellular concentration of protein p6 (∼1 mM) was estimated measuring the number of copies per cell (7 × 105) and the cell volume (1 × 10-15 L). At concentrations around 1 mM, protein p6 associates into oligomers. This self-association behavior is compatible with a dimer−hexamer model (K 2,6 = 3.2 × 108 M-2) or with an isodesmic association of the dimer (K = 950 M-1), because the apparent weight-average molecular mass (M w,a) does not reach saturation at the highest protein concentrations. The sedimentation coefficients of protein p6 monomer and dimer were 1.4 and 2.0, respectively, compatible with translational frictional ratios (f/f o) of 1.15 and 1.30, which slightly deviate from the hydrodynamics of a rigid globular protein. Taking together these results and considering the structure of the nucleoprotein complex, we speculate that the observed oligomers of protein p6 could mimic a scaffold on which DNA folds to form the nucleoprotein complex in vivo.
Bibliography:istex:884FDE5FBAC8B2EBD11DC53AC8CC38702113D08B
This work was supported in part by NIH Grant 5R01 GM27242-17 (MS), Dirección General de Investigación Científica y Técnica, Grants PB93/0173 (MS), PB95/0116 (JMA) and PB95/0120 (GR), EU Grant CHRX-CT92-0010 (MS), Ayuda Especial del CSIC (Estructura y Función de Proteínas) and the institutional help of the Fundación Ramón Areces to Centro de Biología Molecular “Severo Ochoa”.
Abstract published in Advance ACS Abstracts, September 15, 1997.
ark:/67375/TPS-JN0MHX2N-B
ISSN:0006-2960
1520-4995
DOI:10.1021/bi970994e