3kpk

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Crystal structure of sulfide:quinone oxidoreductase from Acidithiobacillus ferrooxidans, C160A mutant

Structural highlights

3kpk is a 1 chain structure with sequence from Acidithiobacillus ferrooxidans ATCC 23270. Full crystallographic information is available from OCA. For a guided tour on the structure components use FirstGlance.
Method:X-ray diffraction, Resolution 2.05Å
Ligands:FAD, H2S, LMT, PGR
Resources:FirstGlance, OCA, PDBe, RCSB, PDBsum, ProSAT

Function

SQRD_ACIF2 Catalyzes the oxidation of hydrogen sulfide, with the help of a quinone. Consecutive reaction cycles lead to the accumulation of a polysulfide product on the active site Cys residues; these products are released when they exceed a critical length, typically as cyclooctasulfur.[1] [2]

Evolutionary Conservation

Check, as determined by ConSurfDB. You may read the explanation of the method and the full data available from ConSurf.

Publication Abstract from PubMed

Sulfide:quinone oxidoreductase from the acidophilic and chemolithotrophic bacterium Acidithiobacillus ferrooxidans was expressed in Escherichia coli and crystallized, and its X-ray molecular structure was determined to 2.3 A resolution for native unbound protein in space group P4(2)2(1)2 . The decylubiquinone-bound structure and the Cys160Ala variant structure were subsequently determined to 2.3 A and 2.05 A resolutions, respectively, in space group P6(2)22 . The enzymatic reaction catalyzed by sulfide:quinone oxidoreductase includes the oxidation of sulfide compounds H(2)S, HS(-), and S(2-) to soluble polysulfide chains or to elemental sulfur in the form of octasulfur rings; these oxidations are coupled to the reduction of ubiquinone or menaquinone. The enzyme comprises two tandem Rossmann fold domains and a flexible C-terminal domain encompassing two amphipathic helices that are thought to provide for membrane anchoring. The second amphipathic helix unwinds and changes its orientation in the hexagonal crystal form. The protein forms a dimer that could be inserted into the membrane to a depth of approximately 20 A. It has an endogenous flavin adenine dinucleotide (FAD) cofactor that is noncovalently bound in the N-terminal domain. Several wide channels connect the FAD cofactor to the exterior of the protein molecule; some of the channels would provide access to the membrane. The ubiquinone molecule is bound in one of these channels; its benzoquinone ring is stacked between the aromatic rings of two conserved Phe residues, and it closely approaches the isoalloxazine moiety of the FAD cofactor. Two active-site cysteine residues situated on the re side of the FAD cofactor form a branched polysulfide bridge. Cys356 disulfide acts as a nucleophile that attacks the C4A atom of the FAD cofactor in electron transfer reaction. The third essential cysteine Cys128 is not modified in these structures; its role is likely confined to the release of the polysulfur product.

Crystal structure of sulfide:quinone oxidoreductase from Acidithiobacillus ferrooxidans: insights into sulfidotrophic respiration and detoxification.,Cherney MM, Zhang Y, Solomonson M, Weiner JH, James MN J Mol Biol. 2010 Apr 30;398(2):292-305. Epub 2010 Mar 19. PMID:20303979[3]

From MEDLINE®/PubMed®, a database of the U.S. National Library of Medicine.

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References

  1. Cherney MM, Zhang Y, Solomonson M, Weiner JH, James MN. Crystal structure of sulfide:quinone oxidoreductase from Acidithiobacillus ferrooxidans: insights into sulfidotrophic respiration and detoxification. J Mol Biol. 2010 Apr 30;398(2):292-305. Epub 2010 Mar 19. PMID:20303979 doi:10.1016/j.jmb.2010.03.018
  2. Cherney MM, Zhang Y, James MN, Weiner JH. Structure-activity characterization of sulfide:quinone oxidoreductase variants. J Struct Biol. 2012 Apr 19. PMID:22542586 doi:10.1016/j.jsb.2012.04.007
  3. Cherney MM, Zhang Y, Solomonson M, Weiner JH, James MN. Crystal structure of sulfide:quinone oxidoreductase from Acidithiobacillus ferrooxidans: insights into sulfidotrophic respiration and detoxification. J Mol Biol. 2010 Apr 30;398(2):292-305. Epub 2010 Mar 19. PMID:20303979 doi:10.1016/j.jmb.2010.03.018

Contents


PDB ID 3kpk

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