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Bacterial-type ferroxidase tunes iron-dependent phosphate sensing during Arabidopsis root development

Access to inorganic phosphate (Pi), a principal intermediate of energy and nucleotide metabolism, profoundly affects cellular activities and plant performance. In most soils, antagonistic Pi-metal interactions restrict Pi bioavailability, which guides local root development to maximize Pi intercepti...

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Autores principales: Naumann, Christin, Heisters, Marcus, Brandt, Wolfgang, Janitza, Philipp, Alfs, Carolin, Tang, Nancy, Toto Nienguesso, Alicia, Ziegler, Jörg, Imre, Richard, Mechtler, Karl, Dagdas, Yasin, Hoehenwarter, Wolfgang, Sawers, Gary, Quint, Marcel, Abel, Steffen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9168544/
https://www.ncbi.nlm.nih.gov/pubmed/35472311
http://dx.doi.org/10.1016/j.cub.2022.04.005
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author Naumann, Christin
Heisters, Marcus
Brandt, Wolfgang
Janitza, Philipp
Alfs, Carolin
Tang, Nancy
Toto Nienguesso, Alicia
Ziegler, Jörg
Imre, Richard
Mechtler, Karl
Dagdas, Yasin
Hoehenwarter, Wolfgang
Sawers, Gary
Quint, Marcel
Abel, Steffen
author_facet Naumann, Christin
Heisters, Marcus
Brandt, Wolfgang
Janitza, Philipp
Alfs, Carolin
Tang, Nancy
Toto Nienguesso, Alicia
Ziegler, Jörg
Imre, Richard
Mechtler, Karl
Dagdas, Yasin
Hoehenwarter, Wolfgang
Sawers, Gary
Quint, Marcel
Abel, Steffen
author_sort Naumann, Christin
collection PubMed
description Access to inorganic phosphate (Pi), a principal intermediate of energy and nucleotide metabolism, profoundly affects cellular activities and plant performance. In most soils, antagonistic Pi-metal interactions restrict Pi bioavailability, which guides local root development to maximize Pi interception. Growing root tips scout the essential but immobile mineral nutrient; however, the mechanisms monitoring external Pi status are unknown. Here, we show that Arabidopsis LOW PHOSPHATE ROOT 1 (LPR1), one key determinant of Fe-dependent Pi sensing in root meristems, encodes a novel ferroxidase of high substrate specificity and affinity (apparent K(M) ∼ 2 μM Fe(2+)). LPR1 typifies an ancient, Fe-oxidizing multicopper protein family that evolved early upon bacterial land colonization. The ancestor of streptophyte algae and embryophytes (land plants) acquired LPR1-type ferroxidase from soil bacteria via horizontal gene transfer, a hypothesis supported by phylogenomics, homology modeling, and biochemistry. Our molecular and kinetic data on LPR1 regulation indicate that Pi-dependent Fe substrate availability determines LPR1 activity and function. Guided by the metabolic lifestyle of extant sister bacterial genera, we propose that Arabidopsis LPR1 monitors subtle concentration differentials of external Fe availability as a Pi-dependent cue to adjust root meristem maintenance via Fe redox signaling and cell wall modification. We further hypothesize that the acquisition of bacterial LPR1-type ferroxidase by embryophyte progenitors facilitated the evolution of local Pi sensing and acquisition during plant terrestrialization.
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spelling pubmed-91685442022-06-14 Bacterial-type ferroxidase tunes iron-dependent phosphate sensing during Arabidopsis root development Naumann, Christin Heisters, Marcus Brandt, Wolfgang Janitza, Philipp Alfs, Carolin Tang, Nancy Toto Nienguesso, Alicia Ziegler, Jörg Imre, Richard Mechtler, Karl Dagdas, Yasin Hoehenwarter, Wolfgang Sawers, Gary Quint, Marcel Abel, Steffen Curr Biol Article Access to inorganic phosphate (Pi), a principal intermediate of energy and nucleotide metabolism, profoundly affects cellular activities and plant performance. In most soils, antagonistic Pi-metal interactions restrict Pi bioavailability, which guides local root development to maximize Pi interception. Growing root tips scout the essential but immobile mineral nutrient; however, the mechanisms monitoring external Pi status are unknown. Here, we show that Arabidopsis LOW PHOSPHATE ROOT 1 (LPR1), one key determinant of Fe-dependent Pi sensing in root meristems, encodes a novel ferroxidase of high substrate specificity and affinity (apparent K(M) ∼ 2 μM Fe(2+)). LPR1 typifies an ancient, Fe-oxidizing multicopper protein family that evolved early upon bacterial land colonization. The ancestor of streptophyte algae and embryophytes (land plants) acquired LPR1-type ferroxidase from soil bacteria via horizontal gene transfer, a hypothesis supported by phylogenomics, homology modeling, and biochemistry. Our molecular and kinetic data on LPR1 regulation indicate that Pi-dependent Fe substrate availability determines LPR1 activity and function. Guided by the metabolic lifestyle of extant sister bacterial genera, we propose that Arabidopsis LPR1 monitors subtle concentration differentials of external Fe availability as a Pi-dependent cue to adjust root meristem maintenance via Fe redox signaling and cell wall modification. We further hypothesize that the acquisition of bacterial LPR1-type ferroxidase by embryophyte progenitors facilitated the evolution of local Pi sensing and acquisition during plant terrestrialization. Cell Press 2022-05-23 /pmc/articles/PMC9168544/ /pubmed/35472311 http://dx.doi.org/10.1016/j.cub.2022.04.005 Text en © 2022 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 Article
Naumann, Christin
Heisters, Marcus
Brandt, Wolfgang
Janitza, Philipp
Alfs, Carolin
Tang, Nancy
Toto Nienguesso, Alicia
Ziegler, Jörg
Imre, Richard
Mechtler, Karl
Dagdas, Yasin
Hoehenwarter, Wolfgang
Sawers, Gary
Quint, Marcel
Abel, Steffen
Bacterial-type ferroxidase tunes iron-dependent phosphate sensing during Arabidopsis root development
title Bacterial-type ferroxidase tunes iron-dependent phosphate sensing during Arabidopsis root development
title_full Bacterial-type ferroxidase tunes iron-dependent phosphate sensing during Arabidopsis root development
title_fullStr Bacterial-type ferroxidase tunes iron-dependent phosphate sensing during Arabidopsis root development
title_full_unstemmed Bacterial-type ferroxidase tunes iron-dependent phosphate sensing during Arabidopsis root development
title_short Bacterial-type ferroxidase tunes iron-dependent phosphate sensing during Arabidopsis root development
title_sort bacterial-type ferroxidase tunes iron-dependent phosphate sensing during arabidopsis root development
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9168544/
https://www.ncbi.nlm.nih.gov/pubmed/35472311
http://dx.doi.org/10.1016/j.cub.2022.04.005
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