Tetramerization Reinforces the Dimer Interface of MnSOD

July 28, 2017

Title

Tetramerization Reinforces the Dimer Interface of MnSOD

Author

Yuewei Sheng, Armando Durazo, Mikhail Schumacher, Edith Butler Gralla, Duilio Cascio, Diane E. Cabelli, Joan Selverstone Valentine

Year

2013

Journal

PLoS ONE

Abstract

Two yeast manganese superoxide dismutases (MnSOD), one from Saccharomyces cerevisiae mitochondria (ScMnSOD) and the other from Candida albicans cytosol (CaMnSODc), have most biochemical and biophysical properties in common, yet ScMnSOD is a tetramer and CaMnSODc is a dimer or “loose tetramer” in solution. Although CaMnSODc was found to crystallize as a tetramer, there is no indication from the solution properties that the functionality of CaMnSODc in vivo depends upon the formation of the tetrameric structure. To elucidate further the functional significance of MnSOD quaternary structure, wild-type and mutant forms of ScMnSOD (K182R, A183P mutant) and CaMnSODc (K184R, L185P mutant) with the substitutions at dimer interfaces were analyzed with respect to their oligomeric states and resistance to pH, heat, and denaturant. Dimeric CaMnSODc was found to be significantly more subject to thermal or denaturant-induced unfolding than tetrameric ScMnSOD. The residue substitutions at dimer interfaces caused dimeric CaMnSODc but not tetrameric ScMnSOD to dissociate into monomers. We conclude that the tetrameric assembly strongly reinforces the dimer interface, which is critical for MnSOD activity.

Instrument

J-715

Keywords

Circular dichroism, Secondary structure, Chemical stability, Protein denaturation, Biochemistry