4d02

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== Publication Abstract from PubMed ==
== Publication Abstract from PubMed ==
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Flavodiiron proteins (FDPs) are a family of enzymes endowed with bona fide oxygen- and/or nitric oxide-reductase activity, although their substrate specificity determinants remain elusive. After a comprehensive comparison of available three-dimensional structures, particularly of FDPs with a clear preference towards either O2 or NO, two main differences were identified near the diiron active site, which led to the construction of site-directed mutants of Y271 and K53 in the oxygen reducing Entamoeba histolytica EhFdp1. The biochemical and biophysical properties of these mutants were studied by UV-visible and electron paramagnetic resonance (EPR) spectroscopies coupled to potentiometry. Their reactivity with O2 and NO was analyzed by stopped-flow absorption spectroscopy and amperometric methods. These mutations, while keeping the overall properties of the redox cofactors, resulted in increased NO reductase activity and faster inactivation of the enzyme in the reaction with O2, pointing to a role of the mutated residues in substrate selectivity.
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Flavodiiron proteins (FDPs) are present in organisms from all domains of life and have been described so far to be involved in the detoxification of oxygen or nitric oxide, acting as O2 and/or NO reductases. The Escherichia coli FDP, named flavorubredoxin (FlRd) is the most extensively studied FDP. Biochemical and in vivo studies revealed that FlRd is involved in NO detoxification, as part of the bacterial defense mechanisms against reactive nitrogen species. E. coli FlRd has a clear preference for NO as substrate in vitro, exhibiting a very low reactivity towards O2. To contribute to the understanding of the structural features defining this substrate selectivity, we determined the crystallographic structure of E. coli FlRd, both in the as-isolated and reduced states. The overall tetrameric structure revealed a highly conserved flavodiiron core domain, with a metallo-beta-lactamase-like domain containing a diiron center and a flavodoxin domain with a FMN cofactor. The metal center in the oxidized state has a mu-hydroxo bridge coordinating the two irons, while in the reduced state this moiety is not detected. Since only the flavodiiron domain was observed in these crystal structures, the structure of the rubredoxin domain was determined by NMR. Tunnels for the substrates were identified, and through Molecular Dynamics simulations no differences for O2 or NO permeation were found. The present data represents the first structure for a NO-selective FDP.
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Flavodiiron oxygen reductase from Entamoeba histolytica: Modulation of substrate preference by tyrosine 271 and lysine 53.,Goncalves VL, Vicente JB, Pinto L, Romao CV, Frazao C, Sarti P, Giuffre A, Teixeira M J Biol Chem. 2014 Aug 23. pii: jbc.M114.579086. PMID:25151360<ref>PMID:25151360</ref>
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Structure of Escherichia coli Flavodiiron nitric oxide reductase.,Romao CV, Vicente JB, Borges PT, Victor BL, Lamosa P, Silva E, Pereira L, Bandeiras TM, Soares CM, Carrondo MA, Turner D, Teixeira M, Frazao C J Mol Biol. 2016 Oct 7. pii: S0022-2836(16)30423-5. doi:, 10.1016/j.jmb.2016.10.008. PMID:27725182<ref>PMID:27725182</ref>
From MEDLINE&reg;/PubMed&reg;, a database of the U.S. National Library of Medicine.<br>
From MEDLINE&reg;/PubMed&reg;, a database of the U.S. National Library of Medicine.<br>

Revision as of 08:22, 9 March 2017

The crystallographic structure of Flavorubredoxin from Escherichia coli

4d02, resolution 1.75Å

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