The Plastid-Encoded RNA Polymerase-Associated Protein PAP9 Is a Superoxide Dismutase With Unusual Structural Features

In Angiosperms, the plastid-encoded RNA polymerase (PEP) is a multimeric enzyme, essential for the proper expression of the plastid genome during chloroplast biogenesis. It is especially required for the light initiated expression of photosynthesis genes and the subsequent build-up of the photosynth...

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Main Authors: Adrien Favier, Pierre Gans, Elisabetta Boeri Erba, Luca Signor, Soumiya Sankari Muthukumar, Thomas Pfannschmidt, Robert Blanvillain, David Cobessi
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-06-01
Series:Frontiers in Plant Science
Subjects:
NMR
Online Access:https://www.frontiersin.org/articles/10.3389/fpls.2021.668897/full
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spelling doaj-ece3fab0cf874c0fb586d1a2e179020a2021-06-30T07:30:08ZengFrontiers Media S.A.Frontiers in Plant Science1664-462X2021-06-011210.3389/fpls.2021.668897668897The Plastid-Encoded RNA Polymerase-Associated Protein PAP9 Is a Superoxide Dismutase With Unusual Structural FeaturesAdrien Favier0Pierre Gans1Elisabetta Boeri Erba2Luca Signor3Soumiya Sankari Muthukumar4Thomas Pfannschmidt5Robert Blanvillain6David Cobessi7Université Grenoble Alpes, CEA, CNRS, IBS, Grenoble, FranceUniversité Grenoble Alpes, CEA, CNRS, IBS, Grenoble, FranceUniversité Grenoble Alpes, CEA, CNRS, IBS, Grenoble, FranceUniversité Grenoble Alpes, CEA, CNRS, IBS, Grenoble, FranceUniversité Grenoble Alpes, CEA, CNRS, IBS, Grenoble, FranceUniversité Grenoble-Alpes, CNRS, CEA, INRA, IRIG-LPCV, Grenoble, FranceUniversité Grenoble-Alpes, CNRS, CEA, INRA, IRIG-LPCV, Grenoble, FranceUniversité Grenoble Alpes, CEA, CNRS, IBS, Grenoble, FranceIn Angiosperms, the plastid-encoded RNA polymerase (PEP) is a multimeric enzyme, essential for the proper expression of the plastid genome during chloroplast biogenesis. It is especially required for the light initiated expression of photosynthesis genes and the subsequent build-up of the photosynthetic apparatus. The PEP complex is composed of a prokaryotic-type core of four plastid-encoded subunits and 12 nuclear-encoded PEP-associated proteins (PAPs). Among them, there are two iron superoxide dismutases, FSD2/PAP9 and FSD3/PAP4. Superoxide dismutases usually are soluble enzymes not bound into larger protein complexes. To investigate this unusual feature, we characterized PAP9 using molecular genetics, fluorescence microscopy, mass spectrometry, X-ray diffraction, and solution-state NMR. Despite the presence of a predicted nuclear localization signal within the sequence of the predicted chloroplast transit peptide, PAP9 was mainly observed within plastids. Mass spectrometry experiments with the recombinant Arabidopsis PAP9 suggested that monomers and dimers of PAP9 could be associated to the PEP complex. In crystals, PAP9 occurred as a dimeric enzyme that displayed a similar fold to that of the FeSODs or manganese SOD (MnSODs). A zinc ion, instead of the expected iron, was found to be penta-coordinated with a trigonal-bipyramidal geometry in the catalytic center of the recombinant protein. The metal coordination involves a water molecule and highly conserved residues in FeSODs. Solution-state NMR and DOSY experiments revealed an unfolded C-terminal 34 amino-acid stretch in the stand-alone protein and few internal residues interacting with the rest of the protein. We hypothesize that this C-terminal extension had appeared during evolution as a distinct feature of the FSD2/PAP9 targeting it to the PEP complex. Close vicinity to the transcriptional apparatus may allow for the protection against the strongly oxidizing aerial environment during plant conquering of terrestrial habitats.https://www.frontiersin.org/articles/10.3389/fpls.2021.668897/fullplastid-encoded RNA polymeraseiron superoxide dismutasechloroplast biogenesisNMRX-ray crystallography
collection DOAJ
language English
format Article
sources DOAJ
author Adrien Favier
Pierre Gans
Elisabetta Boeri Erba
Luca Signor
Soumiya Sankari Muthukumar
Thomas Pfannschmidt
Robert Blanvillain
David Cobessi
spellingShingle Adrien Favier
Pierre Gans
Elisabetta Boeri Erba
Luca Signor
Soumiya Sankari Muthukumar
Thomas Pfannschmidt
Robert Blanvillain
David Cobessi
The Plastid-Encoded RNA Polymerase-Associated Protein PAP9 Is a Superoxide Dismutase With Unusual Structural Features
Frontiers in Plant Science
plastid-encoded RNA polymerase
iron superoxide dismutase
chloroplast biogenesis
NMR
X-ray crystallography
author_facet Adrien Favier
Pierre Gans
Elisabetta Boeri Erba
Luca Signor
Soumiya Sankari Muthukumar
Thomas Pfannschmidt
Robert Blanvillain
David Cobessi
author_sort Adrien Favier
title The Plastid-Encoded RNA Polymerase-Associated Protein PAP9 Is a Superoxide Dismutase With Unusual Structural Features
title_short The Plastid-Encoded RNA Polymerase-Associated Protein PAP9 Is a Superoxide Dismutase With Unusual Structural Features
title_full The Plastid-Encoded RNA Polymerase-Associated Protein PAP9 Is a Superoxide Dismutase With Unusual Structural Features
title_fullStr The Plastid-Encoded RNA Polymerase-Associated Protein PAP9 Is a Superoxide Dismutase With Unusual Structural Features
title_full_unstemmed The Plastid-Encoded RNA Polymerase-Associated Protein PAP9 Is a Superoxide Dismutase With Unusual Structural Features
title_sort plastid-encoded rna polymerase-associated protein pap9 is a superoxide dismutase with unusual structural features
publisher Frontiers Media S.A.
series Frontiers in Plant Science
issn 1664-462X
publishDate 2021-06-01
description In Angiosperms, the plastid-encoded RNA polymerase (PEP) is a multimeric enzyme, essential for the proper expression of the plastid genome during chloroplast biogenesis. It is especially required for the light initiated expression of photosynthesis genes and the subsequent build-up of the photosynthetic apparatus. The PEP complex is composed of a prokaryotic-type core of four plastid-encoded subunits and 12 nuclear-encoded PEP-associated proteins (PAPs). Among them, there are two iron superoxide dismutases, FSD2/PAP9 and FSD3/PAP4. Superoxide dismutases usually are soluble enzymes not bound into larger protein complexes. To investigate this unusual feature, we characterized PAP9 using molecular genetics, fluorescence microscopy, mass spectrometry, X-ray diffraction, and solution-state NMR. Despite the presence of a predicted nuclear localization signal within the sequence of the predicted chloroplast transit peptide, PAP9 was mainly observed within plastids. Mass spectrometry experiments with the recombinant Arabidopsis PAP9 suggested that monomers and dimers of PAP9 could be associated to the PEP complex. In crystals, PAP9 occurred as a dimeric enzyme that displayed a similar fold to that of the FeSODs or manganese SOD (MnSODs). A zinc ion, instead of the expected iron, was found to be penta-coordinated with a trigonal-bipyramidal geometry in the catalytic center of the recombinant protein. The metal coordination involves a water molecule and highly conserved residues in FeSODs. Solution-state NMR and DOSY experiments revealed an unfolded C-terminal 34 amino-acid stretch in the stand-alone protein and few internal residues interacting with the rest of the protein. We hypothesize that this C-terminal extension had appeared during evolution as a distinct feature of the FSD2/PAP9 targeting it to the PEP complex. Close vicinity to the transcriptional apparatus may allow for the protection against the strongly oxidizing aerial environment during plant conquering of terrestrial habitats.
topic plastid-encoded RNA polymerase
iron superoxide dismutase
chloroplast biogenesis
NMR
X-ray crystallography
url https://www.frontiersin.org/articles/10.3389/fpls.2021.668897/full
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