Controlled modulation of the dynamics of the Deinococcus grandis Dps N-terminal tails by divalent metals.
João P L GuerraClement E BlanchetBruno J C VieiraJoão C WaerenborghNykola C JonesSøren Vrønning HoffmannAlice S PereiraPedro TavaresPublished in: Protein science : a publication of the Protein Society (2023)
DNA-binding proteins from starved cells (Dps) are small multifunctional nanocages expressed by prokaryotes in acute oxidative stress conditions or during the starvation-induced stationary phase, as a bacterial defense mechanism. Dps proteins protect the bacterial DNA from damage by either direct binding or by removing precursors of reactive oxygen species from the solution. The DNA-binding properties of most Dps proteins studied so far are related to their unordered, flexible, N- and C- terminal extensions. In a previous work we revealed that the N-terminal tails of Deinoccocus grandis Dps shift from an extended to a compact conformation depending on the ionic strength of the buffer and detected a novel high-spin ferrous iron center in the proximal ends of those tails. In this work we further explore the conformational dynamics of the protein by probing the effect of divalent metals binding to the tail by comparing the metal-binding properties of the wild-type protein with a binding site-impaired D34A variant using size exclusion chromatography, dynamic light scattering, synchrotron radiation circular dichroism and small-angle X-ray scattering. The N-terminal ferrous species was also characterized by Mössbauer spectroscopy. The results herein presented reveal that the conformation of the N-terminal tails is altered upon metal binding in a gradual, reversible, and specific manner. These observations may point towards the existence of a regulatory process for the DNA-binding properties of Dps proteins through metal binding to their N- and/or C- terminal extensions. This article is protected by copyright. All rights reserved.
Keyphrases
- dna binding
- single molecule
- transcription factor
- oxidative stress
- molecular dynamics simulations
- high resolution
- induced apoptosis
- solid state
- wild type
- circulating tumor
- diabetic rats
- mass spectrometry
- cell free
- binding protein
- health risk
- single cell
- liquid chromatography
- molecular dynamics
- human health
- drug induced
- amino acid
- protein protein
- genome wide
- dna damage
- ionic liquid
- cell cycle arrest
- high performance liquid chromatography
- drug delivery
- health risk assessment
- small molecule
- cell proliferation
- magnetic resonance imaging
- high speed
- signaling pathway
- heavy metals
- room temperature
- dna methylation
- magnetic resonance
- nucleic acid
- drinking water
- gene expression
- crystal structure
- endothelial cells
- intensive care unit
- simultaneous determination
- extracorporeal membrane oxygenation
- mechanical ventilation
- heat shock
- cell death