| Literature DB >> 24704039 |
Gabriella Fiorentino1, Immacolata Del Giudice2, Luigi Petraccone3, Simonetta Bartolucci2, Pompea Del Vecchio4.
Abstract
The multiple antibiotic resistance regulators (MarR) constitute a family of ligand-responsive transcriptional regulators ubiquitous among the bacterial and archaeal domains. BldR, an archaeal MarR member characterized from the hyperthermophilic crenarchaeon Sulfolobus solfataricus regulates its own expression and that of an alcohol dehydrogenase gene by binding to sequences in their promoters and responding to benzaldehyde as the effector molecule. In this study we assessed the thermodynamic stability of the protein BldR and its binding with benzaldehyde through biophysical measurements. The temperature- and denaturant-induced unfolding experiments, performed by means of circular dichroism (CD) and differential scanning calorimetry (DSC), showed that BldR has an extremely high thermal stability (Td=108.9°C) and a remarkable resistance against GuHCl (Cm=5.3M at 25°C). The unfolding Gibbs energy, ΔdG (H2O), calculated by the linear extrapolation model from GuHCl-induced unfolding equilibrium curve, is 72.2kJmol(-1). ITC binding experiments showed that four benzaldehyde molecules bind to one BldR dimer with a binding constant Kb of 7.5·10(5)M(-1), being the binding entropically driven. ITC, CD and fluorescence results are consistent with a conformational change induced by benzaldehyde binding, further proving that this molecule is a specific effector for BldR modulating its DNA binding activity.Entities:
Keywords: Archaea; Benzaldehyde binding; DSC; Hyperthermophile; ITC; Thermodynamic stability; Winged-helix transcriptional regulator
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Year: 2014 PMID: 24704039 DOI: 10.1016/j.bbapap.2014.03.011
Source DB: PubMed Journal: Biochim Biophys Acta ISSN: 0006-3002