Superoxide dismutase (SOD, EC 1.15.1.1) is any of a family of enzymes that alternately catalyze the dismutation (or partitioning) of the superoxide (O−2) anion radical into normal molecular oxygen (O2) and hydrogen peroxide (H2O2). Superoxide is produced as a by-product of oxygen metabolism and, if not regulated, causes many types of cell damage. Hydrogen peroxide is also damaging and is degraded by other enzymes such as catalase. Thus, SOD is an important antioxidant defense in nearly all living cells exposed to oxygen. One exception is Lactobacillus plantarum and related lactobacilli, which use intracellular manganese to prevent damage from reactive O−2.
Chemical reaction SODs catalyze the disproportionation of superoxide:
2H+ + 2O−2 → O2 + H2O2 In this way, O−2 is converted into two less damaging species. The general form, applicable to all the different metal−coordinated forms of SOD, can be written as follows:
M(n+1)+−SOD + O−2 → Mn+−SOD + O2 Mn+−SOD + O−2 + 2H+ → M(n+1)+−SOD + H2O2 The reactions by which SOD−catalyzed dismutation of superoxide for Cu,Zn SOD can be written as follows:
Cu2+−SOD + O−2 → Cu+−SOD + O2 (reduction of copper; oxidation of superoxide) Cu+−SOD + O−2 + 2H+ → Cu2+−SOD + H2O2 (oxidation of copper; reduction of superoxide) where M = Cu (n=1); Mn (n=2); Fe (n=2); Ni (n=2) only in prokaryotes. In a series of such reactions, the oxidation state and the charge of the metal cation oscillates between n and n+1: +1 and +2 for Cu, or +2 and +3 for the other metals.
Types
General
Irwin Fridovich and Joe McCord at Duke University discovered the enzymatic activity of superoxide dismutase in 1968. SODs were previously known as a group of metalloproteins with unknown function; for example, CuZnSOD was known as erythrocuprein (or hemocuprein, or cytocuprein) or as the veterinary anti-inflammatory drug "Orgotein". Likewise, Brewer (1967) identified a protein that later became known as superoxide dismutase as an indophenol oxidase by protein analysis of starch gels using the phenazine-tetrazolium technique. There are three major families of superoxide dismutase, depending on the protein fold and the metal cofactor: the Cu/Zn type (which binds both copper and zinc), Fe and Mn types (which bind either iron or manganese), and the Ni type (which binds nickel).
Copper and zinc – most commonly used by eukaryotes, including humans. The cytosols of virtually all eukaryotic cells contain a SOD enzyme with copper and zinc (Cu-Zn-SOD). For example, Cu-Zn-SOD available commercially is normally purified from bovine red blood cells. The bovine Cu-Zn enzyme is a homodimer of molecular weight 32,500. It was the first SOD whose atomic-detail crystal structure was solved, in 1975. It is an 8-stranded "Greek key" beta-barrel, with the active site held between the barrel and two surface loops. The two subunits are tightly joined back-to-back, mostly by hydrophobic and some electrostatic interactions. The ligands of the copper and zinc are six histidine and one aspartate side-chains; one histidine is bound between the two metals. Iron or manganese – used by prokaryotes and protists, and in mitochondria and chloroplasts Iron – Many bacteria contain a form of the enzyme with iron (Fe-SOD); some bacteria contain Fe-SOD, others Mn-SOD, and some (such as E. coli) contain both. Fe-SOD can also be found in the chloroplasts of plants. The 3D structures of the homologous Mn and Fe superoxide dismutases have the same arrangement of alpha-helices, and their active sites contain the same type and arrangement of amino acid side-chains. They are usually dimers, but occasionally tetramers. Manganese – Nearly all mitochondria, and many bacteria, contain a form with manganese (Mn-SOD): For example, the Mn-SOD found in human mitochondria. The ligands of the manganese ions are 3 histidine side-chains, an aspartate side-chain and a water molecule or hydroxy ligand, depending on the Mn oxidation state (respectively II and III). Nickel – prokaryotic. This has a hexameric (6-copy) structure built from right-handed 4-helix bundles, each containing N-terminal hooks that chelate a Ni ion. The Ni-hook contains the motif His-Cys-X-X-Pro-Cys-Gly-X-Tyr; it provides most of the interactions critical for metal binding and catalysis and is, therefore, a likely diagnostic of NiSODs.
In higher plants, SOD isozymes have been localized in different cell compartments. Mn-SOD is present in mitochondria and peroxisomes. Fe-SOD has been found mainly in chloroplasts but has also been detected in peroxisomes, and CuZn-SOD has been localized in cytosol, chloroplasts, peroxisomes, and apoplast.
Human There are three forms of superoxide dismutase present in humans, in all other mammals, and most chordates. SOD1 is located in the cytoplasm, SOD2 in the mitochondria, and SOD3 is extracellular. The first is a dimer (consists of two units), whereas the others are tetramers (four subunits). SOD1 and SOD3 contain copper and zinc, whereas SOD2, the mitochondrial enzyme, has manganese in its reactive centre. The genes are located on chromosomes 21, 6, and 4, respectively (21q22.1, 6q25.3 and 4p15.3-p15.1).
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![Superoxide dismutase: Ribbon diagram of bovine Cu-Zn SOD subunit[8]](https://upload.wikimedia.org/wikipedia/commons/thumb/8/8d/2SOD_ribbon_colorPencil_WhBkgd.png/1280px-2SOD_ribbon_colorPencil_WhBkgd.png?utm_source=en.wikipedia.org&utm_campaign=parser&utm_content=thumbnail)
![Superoxide dismutase: Active site of Human Manganese SOD, manganese shown in purple[9]](https://upload.wikimedia.org/wikipedia/commons/thumb/9/93/Crystal_Structure_of_Human_Manganese_SOD.png/1280px-Crystal_Structure_of_Human_Manganese_SOD.png?utm_source=en.wikipedia.org&utm_campaign=parser&utm_content=thumbnail)


