Molecular Playground/Nickel Superoxide Dismutase
From Proteopedia
(Redirected from User:Carolyn Carr/Sandbox 1)
CBI Molecules
Superoxide Dismutase
1t6u
3g4x
3g4z
3g50
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References
CBI Molecules
Superoxide Dismutase
1t6u
3g4x
3g4z
3g50
Nickel superoxide dismutase (NiSOD) is one of the CBI Molecules being studied in the University of Massachusetts, Amherst Chemistry-Biology Interface Program at Umass Amherst and on display at the Molecular Playground. IntroductionNickel Superoxide Dismutase (NiSOD) is the newest member in a class of enzymes that protects organisms from oxidative stress caused by superoxide, a harmful free radical byproduct of aerobic metabolism. NiSOD reacts with two molecules of superoxide, to form O2 and H2O2 with rates occurring at or near the diffusion limit. During catalysis, the redox-active nickel center cycles between an oxidized and reduced state. This reaction is termed the ping pong mechanism and is shown below.
Mn+ + O2•- + 2H+ → M(n + 1) + H2O2
NiSOD is unique among SOD's for a variety of reasons.
NiSOD StructureNiSOD is a homohexamer (Fig. 2) composed of a dimer of trimers and binds one nickel ion per monomer. The residues coordinated to the nickel active site are located within the first six N-terminal amino acids, termed the nickel-hook. The nickel in the active site cycles between Ni(II) and Ni(III). In the Ni(II) state the nickel has a square planar geometry and is coordinated by the side chains of Cys2 and Cys5 as well as the N-terminal amine and the backbone amide group of Cys2. When oxidized to Ni(III), the imidazole group of His1 binds in the axial position forming a square pyramidal geometry. Research InterestsThe | Maroney Lab is currently investigating the details of the NiSOD catalytic mechanism, including how the enzyme maintains its nickel active sites at 50% Ni(II)/Ni(III) equilibrium despite strong oxidation. In addition, efforts are currently underway to characterize a previously observed intermediate.
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This page was last modified 10:15, 29 December 2019.