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The physiological importance of photosynthetic ferredoxin NADP(+) oxidoreductase (FNR) isoforms in wheat

Ferredoxin NADP(+) oxidoreductase (FNR) enzymes catalyse electron transfer between ferredoxin and NADPH. In plants, a photosynthetic FNR (pFNR) transfers electrons from reduced ferredoxin to NADPH for the final step of linear electron flow, providing reductant for carbon fixation. pFNR is also thoug...

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Autores principales: Moolna, Adam, Bowsher, Caroline G.
Formato: Texto
Lenguaje:English
Publicado: Oxford University Press 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2882262/
https://www.ncbi.nlm.nih.gov/pubmed/20410318
http://dx.doi.org/10.1093/jxb/erq101
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author Moolna, Adam
Bowsher, Caroline G.
author_facet Moolna, Adam
Bowsher, Caroline G.
author_sort Moolna, Adam
collection PubMed
description Ferredoxin NADP(+) oxidoreductase (FNR) enzymes catalyse electron transfer between ferredoxin and NADPH. In plants, a photosynthetic FNR (pFNR) transfers electrons from reduced ferredoxin to NADPH for the final step of linear electron flow, providing reductant for carbon fixation. pFNR is also thought to play important roles in two different mechanisms of cyclic electron flow around photosystem I; and photosynthetic reductant is itself partitioned between competing linear, cyclic, and alternative electron flow pathways. Four pFNR protein isoforms in wheat that display distinct reaction kinetics with leaf-type ferredoxin have previously been identified. It has been suggested that these isoforms may be crucial to the regulation of reductant partition between carbon fixation and other metabolic pathways. Here the 12 cm primary wheat leaf has been used to show that the alternative N-terminal pFNRI and pFNRII protein isoforms have statistically significant differences in response to the physiological parameters of chloroplast maturity, nitrogen regime, and oxidative stress. More specifically, the results obtained suggest that the alternative N-terminal forms of pFNRI have distinct roles in the partitioning of photosynthetic reductant. The role of alternative N-terminal processing of pFNRI is also discussed in terms of its importance for thylakoid targeting. The results suggest that the four pFNR protein isoforms are each present in the chloroplast in phosphorylated and non-phosphorylated states. pFNR isoforms vary in putative phosphorylation responses to physiological parameters, but the physiological significance requires further investigation.
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spelling pubmed-28822622010-06-08 The physiological importance of photosynthetic ferredoxin NADP(+) oxidoreductase (FNR) isoforms in wheat Moolna, Adam Bowsher, Caroline G. J Exp Bot Research Papers Ferredoxin NADP(+) oxidoreductase (FNR) enzymes catalyse electron transfer between ferredoxin and NADPH. In plants, a photosynthetic FNR (pFNR) transfers electrons from reduced ferredoxin to NADPH for the final step of linear electron flow, providing reductant for carbon fixation. pFNR is also thought to play important roles in two different mechanisms of cyclic electron flow around photosystem I; and photosynthetic reductant is itself partitioned between competing linear, cyclic, and alternative electron flow pathways. Four pFNR protein isoforms in wheat that display distinct reaction kinetics with leaf-type ferredoxin have previously been identified. It has been suggested that these isoforms may be crucial to the regulation of reductant partition between carbon fixation and other metabolic pathways. Here the 12 cm primary wheat leaf has been used to show that the alternative N-terminal pFNRI and pFNRII protein isoforms have statistically significant differences in response to the physiological parameters of chloroplast maturity, nitrogen regime, and oxidative stress. More specifically, the results obtained suggest that the alternative N-terminal forms of pFNRI have distinct roles in the partitioning of photosynthetic reductant. The role of alternative N-terminal processing of pFNRI is also discussed in terms of its importance for thylakoid targeting. The results suggest that the four pFNR protein isoforms are each present in the chloroplast in phosphorylated and non-phosphorylated states. pFNR isoforms vary in putative phosphorylation responses to physiological parameters, but the physiological significance requires further investigation. Oxford University Press 2010-06 2010-04-21 /pmc/articles/PMC2882262/ /pubmed/20410318 http://dx.doi.org/10.1093/jxb/erq101 Text en © 2010 The Author(s). This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/2.5), which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited. This paper is available online free of all access charges (see http://jxb.oxfordjournals.org/open_access.html for further details)
spellingShingle Research Papers
Moolna, Adam
Bowsher, Caroline G.
The physiological importance of photosynthetic ferredoxin NADP(+) oxidoreductase (FNR) isoforms in wheat
title The physiological importance of photosynthetic ferredoxin NADP(+) oxidoreductase (FNR) isoforms in wheat
title_full The physiological importance of photosynthetic ferredoxin NADP(+) oxidoreductase (FNR) isoforms in wheat
title_fullStr The physiological importance of photosynthetic ferredoxin NADP(+) oxidoreductase (FNR) isoforms in wheat
title_full_unstemmed The physiological importance of photosynthetic ferredoxin NADP(+) oxidoreductase (FNR) isoforms in wheat
title_short The physiological importance of photosynthetic ferredoxin NADP(+) oxidoreductase (FNR) isoforms in wheat
title_sort physiological importance of photosynthetic ferredoxin nadp(+) oxidoreductase (fnr) isoforms in wheat
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2882262/
https://www.ncbi.nlm.nih.gov/pubmed/20410318
http://dx.doi.org/10.1093/jxb/erq101
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