Dissecting the integrative antioxidant and redox systems in plant mitochondria. Effect of stress and S-nitrosylation.

Mitochondrial respiration provides the energy needed to drive metabolic and transport processes in cells. Mitochondria are a significant site of reactive oxygen species (ROS) production in plant cells, and redox-system components obey fine regulation mechanisms that are essential in protecting the m...

Full description

Bibliographic Details
Main Authors: Juan José Lázaro, Ana eJiménez, Daymi eCamejo, Iván eiglesias-Baena, María Carmen Martí, Alfonso eLázaro-Payo, Sergio eBarranco-Medina, Francisca eSevilla
Format: Article
Language:English
Published: Frontiers Media S.A. 2013-11-01
Series:Frontiers in Plant Science
Subjects:
Online Access:http://journal.frontiersin.org/Journal/10.3389/fpls.2013.00460/full
id doaj-44d4b13cd322434f80221b8b031d05ef
record_format Article
spelling doaj-44d4b13cd322434f80221b8b031d05ef2020-11-25T00:43:26ZengFrontiers Media S.A.Frontiers in Plant Science1664-462X2013-11-01410.3389/fpls.2013.0046063238Dissecting the integrative antioxidant and redox systems in plant mitochondria. Effect of stress and S-nitrosylation.Juan José Lázaro0Ana eJiménez1Daymi eCamejo2Iván eiglesias-Baena3María Carmen Martí4Alfonso eLázaro-Payo5Sergio eBarranco-Medina6Francisca eSevilla7Agencia Estatal Consejo Superior de Investigaciones Científicas (CSIC)Agencia Estatal Consejo Superior de Investigaciones Científicas, Murcia, SpainAgencia Estatal Consejo Superior de Investigaciones Científicas, Murcia, SpainAgencia Estatal Consejo Superior de Investigaciones Científicas (CSIC)Agencia Estatal Consejo Superior de Investigaciones Científicas, Murcia, SpainAgencia Estatal Consejo Superior de Investigaciones Científicas (CSIC)Agencia Estatal Consejo Superior de Investigaciones Científicas (CSIC)Agencia Estatal Consejo Superior de Investigaciones Científicas (CSIC)Mitochondrial respiration provides the energy needed to drive metabolic and transport processes in cells. Mitochondria are a significant site of reactive oxygen species (ROS) production in plant cells, and redox-system components obey fine regulation mechanisms that are essential in protecting the mitochondrial integrity. In addition to ROS, there are compelling indications that nitric oxide (NO.) can be generated in this organelle by both reductive and oxidative pathways. ROS and reactive nitrogen species (RNS) play a key role in signaling but they can also be deleterious via oxidation of macromolecules. The high production of ROS obligates mitochondria to be provided with a set of ROS scavenging mechanisms. The first line of mitochondrial antioxidants is composed of superoxide dismutase and the enzymes of the ascorbate-glutathione cycle, which are not only able to scavenge ROS but also to repair cell damage and possibly serve as redox sensors. The dithiol-disulfide exchanges form independent signaling nodes and act as antioxidant defense mechanisms as well as sensor proteins modulating redox signaling during development and stress adaptation. The presence of thioredoxin (Trx), peroxiredoxin (Prx) and sulfiredoxin (Srx) in the mitochondria has been recently reported. Cumulative results obtained from studies in salt stress models have demonstrated that these redox proteins play a significant role in the establishment of salt tolerance. The Trx/Prx/Srx system may be subjected to a fine regulated mechanism involving post-translational modifications, among which S-glutathionylation and S-nitrosylation seem to exhibit a critical role that is just beginning to be understood. This review summarizes our current knowledge in antioxidative systems in plant mitochondria, their interrelationships, mechanisms of compensation and some unresolved questions, with special focus on their response to abiotic stress.http://journal.frontiersin.org/Journal/10.3389/fpls.2013.00460/fullMitochondriasignalingabiotic stressS-nitrosylationthioredoxinperoxiredoxin
collection DOAJ
language English
format Article
sources DOAJ
author Juan José Lázaro
Ana eJiménez
Daymi eCamejo
Iván eiglesias-Baena
María Carmen Martí
Alfonso eLázaro-Payo
Sergio eBarranco-Medina
Francisca eSevilla
spellingShingle Juan José Lázaro
Ana eJiménez
Daymi eCamejo
Iván eiglesias-Baena
María Carmen Martí
Alfonso eLázaro-Payo
Sergio eBarranco-Medina
Francisca eSevilla
Dissecting the integrative antioxidant and redox systems in plant mitochondria. Effect of stress and S-nitrosylation.
Frontiers in Plant Science
Mitochondria
signaling
abiotic stress
S-nitrosylation
thioredoxin
peroxiredoxin
author_facet Juan José Lázaro
Ana eJiménez
Daymi eCamejo
Iván eiglesias-Baena
María Carmen Martí
Alfonso eLázaro-Payo
Sergio eBarranco-Medina
Francisca eSevilla
author_sort Juan José Lázaro
title Dissecting the integrative antioxidant and redox systems in plant mitochondria. Effect of stress and S-nitrosylation.
title_short Dissecting the integrative antioxidant and redox systems in plant mitochondria. Effect of stress and S-nitrosylation.
title_full Dissecting the integrative antioxidant and redox systems in plant mitochondria. Effect of stress and S-nitrosylation.
title_fullStr Dissecting the integrative antioxidant and redox systems in plant mitochondria. Effect of stress and S-nitrosylation.
title_full_unstemmed Dissecting the integrative antioxidant and redox systems in plant mitochondria. Effect of stress and S-nitrosylation.
title_sort dissecting the integrative antioxidant and redox systems in plant mitochondria. effect of stress and s-nitrosylation.
publisher Frontiers Media S.A.
series Frontiers in Plant Science
issn 1664-462X
publishDate 2013-11-01
description Mitochondrial respiration provides the energy needed to drive metabolic and transport processes in cells. Mitochondria are a significant site of reactive oxygen species (ROS) production in plant cells, and redox-system components obey fine regulation mechanisms that are essential in protecting the mitochondrial integrity. In addition to ROS, there are compelling indications that nitric oxide (NO.) can be generated in this organelle by both reductive and oxidative pathways. ROS and reactive nitrogen species (RNS) play a key role in signaling but they can also be deleterious via oxidation of macromolecules. The high production of ROS obligates mitochondria to be provided with a set of ROS scavenging mechanisms. The first line of mitochondrial antioxidants is composed of superoxide dismutase and the enzymes of the ascorbate-glutathione cycle, which are not only able to scavenge ROS but also to repair cell damage and possibly serve as redox sensors. The dithiol-disulfide exchanges form independent signaling nodes and act as antioxidant defense mechanisms as well as sensor proteins modulating redox signaling during development and stress adaptation. The presence of thioredoxin (Trx), peroxiredoxin (Prx) and sulfiredoxin (Srx) in the mitochondria has been recently reported. Cumulative results obtained from studies in salt stress models have demonstrated that these redox proteins play a significant role in the establishment of salt tolerance. The Trx/Prx/Srx system may be subjected to a fine regulated mechanism involving post-translational modifications, among which S-glutathionylation and S-nitrosylation seem to exhibit a critical role that is just beginning to be understood. This review summarizes our current knowledge in antioxidative systems in plant mitochondria, their interrelationships, mechanisms of compensation and some unresolved questions, with special focus on their response to abiotic stress.
topic Mitochondria
signaling
abiotic stress
S-nitrosylation
thioredoxin
peroxiredoxin
url http://journal.frontiersin.org/Journal/10.3389/fpls.2013.00460/full
work_keys_str_mv AT juanjoselazaro dissectingtheintegrativeantioxidantandredoxsystemsinplantmitochondriaeffectofstressandsnitrosylation
AT anaejimenez dissectingtheintegrativeantioxidantandredoxsystemsinplantmitochondriaeffectofstressandsnitrosylation
AT daymiecamejo dissectingtheintegrativeantioxidantandredoxsystemsinplantmitochondriaeffectofstressandsnitrosylation
AT ivaneiglesiasbaena dissectingtheintegrativeantioxidantandredoxsystemsinplantmitochondriaeffectofstressandsnitrosylation
AT mariacarmenmarti dissectingtheintegrativeantioxidantandredoxsystemsinplantmitochondriaeffectofstressandsnitrosylation
AT alfonsoelazaropayo dissectingtheintegrativeantioxidantandredoxsystemsinplantmitochondriaeffectofstressandsnitrosylation
AT sergioebarrancomedina dissectingtheintegrativeantioxidantandredoxsystemsinplantmitochondriaeffectofstressandsnitrosylation
AT franciscaesevilla dissectingtheintegrativeantioxidantandredoxsystemsinplantmitochondriaeffectofstressandsnitrosylation
_version_ 1725278327427563520