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A new member of the flavodoxin superfamily from Fusobacterium nucleatum that functions in heme trafficking and reduction of anaerobilin

Fusobacterium nucleatum is an opportunistic oral pathogen that is associated with various cancers. To fulfill its essential need for iron, this anaerobe will express heme uptake machinery encoded at a single genetic locus. The heme uptake operon includes HmuW, a class C radical SAM-dependent methylt...

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Autores principales: McGregor, Alexandra K., Chan, Anson C.K., Schroeder, Megan D., Do, Long T.M., Saini, Gurpreet, Murphy, Michael E.P., Wolthers, Kirsten R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10404700/
https://www.ncbi.nlm.nih.gov/pubmed/37302554
http://dx.doi.org/10.1016/j.jbc.2023.104902
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author McGregor, Alexandra K.
Chan, Anson C.K.
Schroeder, Megan D.
Do, Long T.M.
Saini, Gurpreet
Murphy, Michael E.P.
Wolthers, Kirsten R.
author_facet McGregor, Alexandra K.
Chan, Anson C.K.
Schroeder, Megan D.
Do, Long T.M.
Saini, Gurpreet
Murphy, Michael E.P.
Wolthers, Kirsten R.
author_sort McGregor, Alexandra K.
collection PubMed
description Fusobacterium nucleatum is an opportunistic oral pathogen that is associated with various cancers. To fulfill its essential need for iron, this anaerobe will express heme uptake machinery encoded at a single genetic locus. The heme uptake operon includes HmuW, a class C radical SAM-dependent methyltransferase that degrades heme anaerobically to release Fe(2+) and a linear tetrapyrrole called anaerobilin. The last gene in the operon, hmuF encodes a member of the flavodoxin superfamily of proteins. We discovered that HmuF and a paralog, FldH, bind tightly to both FMN and heme. The structure of Fe(3+)-heme–bound FldH (1.6 Å resolution) reveals a helical cap domain appended to the ⍺/β core of the flavodoxin fold. The cap creates a hydrophobic binding cleft that positions the heme planar to the si-face of the FMN isoalloxazine ring. The ferric heme iron is hexacoordinated to His134 and a solvent molecule. In contrast to flavodoxins, FldH and HmuF do not stabilize the FMN semiquinone but instead cycle between the FMN oxidized and hydroquinone states. We show that heme-loaded HmuF and heme-loaded FldH traffic heme to HmuW for degradation of the protoporphyrin ring. Both FldH and HmuF then catalyze multiple reductions of anaerobilin through hydride transfer from the FMN hydroquinone. The latter activity eliminates the aromaticity of anaerobilin and the electrophilic methylene group that was installed through HmuW turnover. Hence, HmuF provides a protected path for anaerobic heme catabolism, offering F. nucleatum a competitive advantage in the colonization of anoxic sites of the human body.
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spelling pubmed-104047002023-08-08 A new member of the flavodoxin superfamily from Fusobacterium nucleatum that functions in heme trafficking and reduction of anaerobilin McGregor, Alexandra K. Chan, Anson C.K. Schroeder, Megan D. Do, Long T.M. Saini, Gurpreet Murphy, Michael E.P. Wolthers, Kirsten R. J Biol Chem Research Article Fusobacterium nucleatum is an opportunistic oral pathogen that is associated with various cancers. To fulfill its essential need for iron, this anaerobe will express heme uptake machinery encoded at a single genetic locus. The heme uptake operon includes HmuW, a class C radical SAM-dependent methyltransferase that degrades heme anaerobically to release Fe(2+) and a linear tetrapyrrole called anaerobilin. The last gene in the operon, hmuF encodes a member of the flavodoxin superfamily of proteins. We discovered that HmuF and a paralog, FldH, bind tightly to both FMN and heme. The structure of Fe(3+)-heme–bound FldH (1.6 Å resolution) reveals a helical cap domain appended to the ⍺/β core of the flavodoxin fold. The cap creates a hydrophobic binding cleft that positions the heme planar to the si-face of the FMN isoalloxazine ring. The ferric heme iron is hexacoordinated to His134 and a solvent molecule. In contrast to flavodoxins, FldH and HmuF do not stabilize the FMN semiquinone but instead cycle between the FMN oxidized and hydroquinone states. We show that heme-loaded HmuF and heme-loaded FldH traffic heme to HmuW for degradation of the protoporphyrin ring. Both FldH and HmuF then catalyze multiple reductions of anaerobilin through hydride transfer from the FMN hydroquinone. The latter activity eliminates the aromaticity of anaerobilin and the electrophilic methylene group that was installed through HmuW turnover. Hence, HmuF provides a protected path for anaerobic heme catabolism, offering F. nucleatum a competitive advantage in the colonization of anoxic sites of the human body. American Society for Biochemistry and Molecular Biology 2023-06-10 /pmc/articles/PMC10404700/ /pubmed/37302554 http://dx.doi.org/10.1016/j.jbc.2023.104902 Text en © 2023 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
McGregor, Alexandra K.
Chan, Anson C.K.
Schroeder, Megan D.
Do, Long T.M.
Saini, Gurpreet
Murphy, Michael E.P.
Wolthers, Kirsten R.
A new member of the flavodoxin superfamily from Fusobacterium nucleatum that functions in heme trafficking and reduction of anaerobilin
title A new member of the flavodoxin superfamily from Fusobacterium nucleatum that functions in heme trafficking and reduction of anaerobilin
title_full A new member of the flavodoxin superfamily from Fusobacterium nucleatum that functions in heme trafficking and reduction of anaerobilin
title_fullStr A new member of the flavodoxin superfamily from Fusobacterium nucleatum that functions in heme trafficking and reduction of anaerobilin
title_full_unstemmed A new member of the flavodoxin superfamily from Fusobacterium nucleatum that functions in heme trafficking and reduction of anaerobilin
title_short A new member of the flavodoxin superfamily from Fusobacterium nucleatum that functions in heme trafficking and reduction of anaerobilin
title_sort new member of the flavodoxin superfamily from fusobacterium nucleatum that functions in heme trafficking and reduction of anaerobilin
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10404700/
https://www.ncbi.nlm.nih.gov/pubmed/37302554
http://dx.doi.org/10.1016/j.jbc.2023.104902
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