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An in vivo system involving co-expression of cyanobacterial flavodoxin and ferredoxin–NADP(+) reductase confers increased tolerance to oxidative stress in plants

Oxidative stress in plants causes ferredoxin down-regulation and NADP(+) shortage, over-reduction of the photosynthetic electron transport chain, electron leakage to oxygen and generation of reactive oxygen species (ROS). Expression of cyanobacterial flavodoxin in tobacco chloroplasts compensates fo...

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Autores principales: Giró, Mariana, Ceccoli, Romina D., Poli, Hugo O., Carrillo, Néstor, Lodeyro, Anabella F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3642056/
https://www.ncbi.nlm.nih.gov/pubmed/23650570
http://dx.doi.org/10.1016/j.fob.2011.10.004
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author Giró, Mariana
Ceccoli, Romina D.
Poli, Hugo O.
Carrillo, Néstor
Lodeyro, Anabella F.
author_facet Giró, Mariana
Ceccoli, Romina D.
Poli, Hugo O.
Carrillo, Néstor
Lodeyro, Anabella F.
author_sort Giró, Mariana
collection PubMed
description Oxidative stress in plants causes ferredoxin down-regulation and NADP(+) shortage, over-reduction of the photosynthetic electron transport chain, electron leakage to oxygen and generation of reactive oxygen species (ROS). Expression of cyanobacterial flavodoxin in tobacco chloroplasts compensates for ferredoxin decline and restores electron delivery to productive routes, resulting in enhanced stress tolerance. We have designed an in vivo system to optimize flavodoxin reduction and NADP(+) regeneration under stress using a version of cyanobacterial ferredoxin–NADP(+) reductase without the thylakoid-binding domain. Co-expression of the two soluble flavoproteins in the chloroplast stroma resulted in lines displaying maximal tolerance to redox-cycling oxidants, lower damage and decreased ROS accumulation. The results underscore the importance of chloroplast redox homeostasis in plants exposed to adverse conditions, and provide a tool to improve crop tolerance toward environmental hardships.
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spelling pubmed-36420562013-05-06 An in vivo system involving co-expression of cyanobacterial flavodoxin and ferredoxin–NADP(+) reductase confers increased tolerance to oxidative stress in plants Giró, Mariana Ceccoli, Romina D. Poli, Hugo O. Carrillo, Néstor Lodeyro, Anabella F. FEBS Open Bio Article Oxidative stress in plants causes ferredoxin down-regulation and NADP(+) shortage, over-reduction of the photosynthetic electron transport chain, electron leakage to oxygen and generation of reactive oxygen species (ROS). Expression of cyanobacterial flavodoxin in tobacco chloroplasts compensates for ferredoxin decline and restores electron delivery to productive routes, resulting in enhanced stress tolerance. We have designed an in vivo system to optimize flavodoxin reduction and NADP(+) regeneration under stress using a version of cyanobacterial ferredoxin–NADP(+) reductase without the thylakoid-binding domain. Co-expression of the two soluble flavoproteins in the chloroplast stroma resulted in lines displaying maximal tolerance to redox-cycling oxidants, lower damage and decreased ROS accumulation. The results underscore the importance of chloroplast redox homeostasis in plants exposed to adverse conditions, and provide a tool to improve crop tolerance toward environmental hardships. Elsevier 2011-11-11 /pmc/articles/PMC3642056/ /pubmed/23650570 http://dx.doi.org/10.1016/j.fob.2011.10.004 Text en © 2011 Published by Elsevier B.V. on behalf of Federation of European Biochemical Societies. This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCommercial-No Derivative Works License, which permits non- commercial use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Article
Giró, Mariana
Ceccoli, Romina D.
Poli, Hugo O.
Carrillo, Néstor
Lodeyro, Anabella F.
An in vivo system involving co-expression of cyanobacterial flavodoxin and ferredoxin–NADP(+) reductase confers increased tolerance to oxidative stress in plants
title An in vivo system involving co-expression of cyanobacterial flavodoxin and ferredoxin–NADP(+) reductase confers increased tolerance to oxidative stress in plants
title_full An in vivo system involving co-expression of cyanobacterial flavodoxin and ferredoxin–NADP(+) reductase confers increased tolerance to oxidative stress in plants
title_fullStr An in vivo system involving co-expression of cyanobacterial flavodoxin and ferredoxin–NADP(+) reductase confers increased tolerance to oxidative stress in plants
title_full_unstemmed An in vivo system involving co-expression of cyanobacterial flavodoxin and ferredoxin–NADP(+) reductase confers increased tolerance to oxidative stress in plants
title_short An in vivo system involving co-expression of cyanobacterial flavodoxin and ferredoxin–NADP(+) reductase confers increased tolerance to oxidative stress in plants
title_sort in vivo system involving co-expression of cyanobacterial flavodoxin and ferredoxin–nadp(+) reductase confers increased tolerance to oxidative stress in plants
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3642056/
https://www.ncbi.nlm.nih.gov/pubmed/23650570
http://dx.doi.org/10.1016/j.fob.2011.10.004
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