3ot7 Citations

Subunit dissociation and metal binding by Escherichia coli apo-manganese superoxide dismutase.

Arch Biochem Biophys 505 213-25 (2011)
Cited: 13 times
EuropePMC logo PMID: 21044611

Abstract

Metal binding by apo-manganese superoxide dismutase (apo-MnSOD) is essential for functional maturation of the enzyme. Previous studies have demonstrated that metal binding by apo-MnSOD is conformationally gated, requiring protein reorganization for the metal to bind. We have now solved the X-ray crystal structure of apo-MnSOD at 1.9Å resolution. The organization of active site residues is independent of the presence of the metal cofactor, demonstrating that protein itself templates the unusual metal coordination geometry. Electrophoretic analysis of mixtures of apo- and (Mn₂)-MnSOD, dye-conjugated protein, or C-terminal Strep-tag II fusion protein reveals a dynamic subunit exchange process associated with cooperative metal binding by the two subunits of the dimeric protein. In contrast, (S126C) (SS) apo-MnSOD, which contains an inter-subunit covalent disulfide-crosslink, exhibits anti-cooperative metal binding. The protein concentration dependence of metal uptake kinetics implies that protein dissociation is involved in metal binding by the wild type apo-protein, although other processes may also contribute to gating metal uptake. Protein concentration dependent small-zone size exclusion chromatography is consistent with apo-MnSOD dimer dissociation at low protein concentration (K(D)=1×10⁻⁵ M). Studies on metal uptake by apo-MnSOD in Escherichia coli cells show that the protein exhibits similar behavior in vivo and in vitro.

Articles - 3ot7 mentioned but not cited (3)

  1. Non-adaptive origins of interactome complexity. Fernández A, Lynch M. Nature 474 502-505 (2011)
  2. Subunit dissociation and metal binding by Escherichia coli apo-manganese superoxide dismutase. Whittaker MM, Lerch TF, Kirillova O, Chapman MS, Whittaker JW. Arch Biochem Biophys 505 213-225 (2011)
  3. Identifying Metal Binding Sites in Proteins Using Homologous Structures, the MADE Approach. Ravnik V, Jukič M, Bren U. J Chem Inf Model 63 5204-5219 (2023)


Reviews citing this publication (3)

  1. Superoxide dismutases and superoxide reductases. Sheng Y, Abreu IA, Cabelli DE, Maroney MJ, Miller AF, Teixeira M, Valentine JS. Chem Rev 114 3854-3918 (2014)
  2. Battles with iron: manganese in oxidative stress protection. Aguirre JD, Culotta VC. J Biol Chem 287 13541-13548 (2012)
  3. The mismetallation of enzymes during oxidative stress. Imlay JA. J Biol Chem 289 28121-28128 (2014)

Articles citing this publication (7)