Reaction Mechanism of the Iron−Sulfur Flavoenzyme Adenosine-5‘-Phosphosulfate Reductase Based on the Structural Characterization of Different Enzymatic States

dc.contributor.authorSchiffer, Alexander
dc.contributor.authorFritz, Günter
dc.contributor.authorKroneck, Peter M. H.
dc.contributor.authorErmler, Ulrich
dc.date.accessioned2017-02-28T12:14:35Z
dc.date.available2017-02-28T12:14:35Z
dc.date.issued2006-03eng
dc.description.abstractThe iron-sulfur flavoenzyme adenosine-5'-phosphosulfate (APS) reductase catalyzes a key reaction of the global sulfur cycle by reversibly transforming APS to sulfite and AMP. The structures of the dissimilatory enzyme from Archaeoglobus fulgidus in the reduced state (FADred) and in the sulfite adduct state (FAD-sulfite-AMP) have been recently elucidated at 1.6 and 2.5 A resolution, respectively. Here we present new structural features of the enzyme trapped in four different catalytically relevant states that provide us with a detailed picture of its reaction cycle. In the oxidized state (FADox), the isoalloxazine moiety of the FAD cofactor exhibits a similarly bent conformation as observed in the structure of the reduced enzyme. In the APS-bound state (FADox-APS), the substrate APS is embedded into a 17 A long substrate channel in such a way that the isoalloxazine ring is pushed toward the channel bottom, thereby producing a compressed enzyme-substrate complex. A clamp formed by residues ArgA317 and LeuA278 to fix the adenine ring and the curved APS conformation appear to be key factors to hold APS in a strained conformation. This energy-rich state is relaxed during the attack of APS on the reduced FAD. A relaxed FAD-sulfite adduct is observed in the structure of the FAD-sulfite state. Finally, a FAD-sulfite-AMP1 state with AMP within van der Waals distance of the sulfite adduct could be characterized. This structure documents how adjacent negative charges are stabilized by the protein matrix which is crucial for forming APS from AMP and sulfite in the reverse reaction.eng
dc.description.versionpublishedeng
dc.identifier.doi10.1021/bi0521689eng
dc.identifier.pmid16503650eng
dc.identifier.urihttps://kops.uni-konstanz.de/handle/123456789/37755
dc.language.isoengeng
dc.subject.ddc570eng
dc.titleReaction Mechanism of the Iron−Sulfur Flavoenzyme Adenosine-5‘-Phosphosulfate Reductase Based on the Structural Characterization of Different Enzymatic Stateseng
dc.typeJOURNAL_ARTICLEeng
dspace.entity.typePublication
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@article{Schiffer2006-03React-37755,
  year={2006},
  doi={10.1021/bi0521689},
  title={Reaction Mechanism of the Iron−Sulfur Flavoenzyme Adenosine-5‘-Phosphosulfate Reductase Based on the Structural Characterization of Different Enzymatic States},
  number={9},
  volume={45},
  issn={0006-2960},
  journal={Biochemistry},
  pages={2960--2967},
  author={Schiffer, Alexander and Fritz, Günter and Kroneck, Peter M. H. and Ermler, Ulrich}
}
kops.citation.iso690SCHIFFER, Alexander, Günter FRITZ, Peter M. H. KRONECK, Ulrich ERMLER, 2006. Reaction Mechanism of the Iron−Sulfur Flavoenzyme Adenosine-5‘-Phosphosulfate Reductase Based on the Structural Characterization of Different Enzymatic States. In: Biochemistry. 2006, 45(9), pp. 2960-2967. ISSN 0006-2960. eISSN 1520-4995. Available under: doi: 10.1021/bi0521689deu
kops.citation.iso690SCHIFFER, Alexander, Günter FRITZ, Peter M. H. KRONECK, Ulrich ERMLER, 2006. Reaction Mechanism of the Iron−Sulfur Flavoenzyme Adenosine-5‘-Phosphosulfate Reductase Based on the Structural Characterization of Different Enzymatic States. In: Biochemistry. 2006, 45(9), pp. 2960-2967. ISSN 0006-2960. eISSN 1520-4995. Available under: doi: 10.1021/bi0521689eng
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kops.sourcefieldBiochemistry. 2006, <b>45</b>(9), pp. 2960-2967. ISSN 0006-2960. eISSN 1520-4995. Available under: doi: 10.1021/bi0521689deu
kops.sourcefield.plainBiochemistry. 2006, 45(9), pp. 2960-2967. ISSN 0006-2960. eISSN 1520-4995. Available under: doi: 10.1021/bi0521689deu
kops.sourcefield.plainBiochemistry. 2006, 45(9), pp. 2960-2967. ISSN 0006-2960. eISSN 1520-4995. Available under: doi: 10.1021/bi0521689eng
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