Heat-Induced Oxidation of the Nuclei and Cytosol

The concept that heat stress (HS) causes a large accumulation of reactive oxygen species (ROS) is widely accepted. However, the intracellular compartmentation of ROS accumulation has been poorly characterized. We therefore used redox-sensitive green fluorescent protein (roGFP2) to provide compartmen...

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Main Authors: Richa Babbar, Barbara Karpinska, Anil Grover, Christine H. Foyer
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-01-01
Series:Frontiers in Plant Science
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fpls.2020.617779/full
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spelling doaj-a3736250e5bf43b5a3c0cca78f1ac8872021-01-12T05:15:26ZengFrontiers Media S.A.Frontiers in Plant Science1664-462X2021-01-011110.3389/fpls.2020.617779617779Heat-Induced Oxidation of the Nuclei and CytosolRicha Babbar0Richa Babbar1Barbara Karpinska2Anil Grover3Christine H. Foyer4School of Biosciences, College of Life and Environmental Sciences, University of Birmingham, Birmingham, United KingdomDepartment of Plant Molecular Biology, University of Delhi South Campus, New Delhi, IndiaSchool of Biosciences, College of Life and Environmental Sciences, University of Birmingham, Birmingham, United KingdomDepartment of Plant Molecular Biology, University of Delhi South Campus, New Delhi, IndiaSchool of Biosciences, College of Life and Environmental Sciences, University of Birmingham, Birmingham, United KingdomThe concept that heat stress (HS) causes a large accumulation of reactive oxygen species (ROS) is widely accepted. However, the intracellular compartmentation of ROS accumulation has been poorly characterized. We therefore used redox-sensitive green fluorescent protein (roGFP2) to provide compartment-specific information on heat-induced redox changes of the nuclei and cytosol of Arabidopsis leaf epidermal and stomatal guard cells. We show that HS causes a large increase in the degree of oxidation of both compartments, causing large shifts in the glutathione redox potentials of the cells. Heat-induced increases in the levels of the marker transcripts, heat shock protein (HSP)101, and ascorbate peroxidase (APX)2 were maximal after 15 min of the onset of the heat treatment. RNAseq analysis of the transcript profiles of the control and heat-treated seedlings revealed large changes in transcripts encoding HSPs, mitochondrial proteins, transcription factors, and other nuclear localized components. We conclude that HS causes extensive oxidation of the nucleus as well as the cytosol. We propose that the heat-induced changes in the nuclear redox state are central to both genetic and epigenetic control of plant responses to HS.https://www.frontiersin.org/articles/10.3389/fpls.2020.617779/fullepigeneticsheat shock proteinsreactive oxygen speciesredox-sensitive green fluorescent proteinoxidation
collection DOAJ
language English
format Article
sources DOAJ
author Richa Babbar
Richa Babbar
Barbara Karpinska
Anil Grover
Christine H. Foyer
spellingShingle Richa Babbar
Richa Babbar
Barbara Karpinska
Anil Grover
Christine H. Foyer
Heat-Induced Oxidation of the Nuclei and Cytosol
Frontiers in Plant Science
epigenetics
heat shock proteins
reactive oxygen species
redox-sensitive green fluorescent protein
oxidation
author_facet Richa Babbar
Richa Babbar
Barbara Karpinska
Anil Grover
Christine H. Foyer
author_sort Richa Babbar
title Heat-Induced Oxidation of the Nuclei and Cytosol
title_short Heat-Induced Oxidation of the Nuclei and Cytosol
title_full Heat-Induced Oxidation of the Nuclei and Cytosol
title_fullStr Heat-Induced Oxidation of the Nuclei and Cytosol
title_full_unstemmed Heat-Induced Oxidation of the Nuclei and Cytosol
title_sort heat-induced oxidation of the nuclei and cytosol
publisher Frontiers Media S.A.
series Frontiers in Plant Science
issn 1664-462X
publishDate 2021-01-01
description The concept that heat stress (HS) causes a large accumulation of reactive oxygen species (ROS) is widely accepted. However, the intracellular compartmentation of ROS accumulation has been poorly characterized. We therefore used redox-sensitive green fluorescent protein (roGFP2) to provide compartment-specific information on heat-induced redox changes of the nuclei and cytosol of Arabidopsis leaf epidermal and stomatal guard cells. We show that HS causes a large increase in the degree of oxidation of both compartments, causing large shifts in the glutathione redox potentials of the cells. Heat-induced increases in the levels of the marker transcripts, heat shock protein (HSP)101, and ascorbate peroxidase (APX)2 were maximal after 15 min of the onset of the heat treatment. RNAseq analysis of the transcript profiles of the control and heat-treated seedlings revealed large changes in transcripts encoding HSPs, mitochondrial proteins, transcription factors, and other nuclear localized components. We conclude that HS causes extensive oxidation of the nucleus as well as the cytosol. We propose that the heat-induced changes in the nuclear redox state are central to both genetic and epigenetic control of plant responses to HS.
topic epigenetics
heat shock proteins
reactive oxygen species
redox-sensitive green fluorescent protein
oxidation
url https://www.frontiersin.org/articles/10.3389/fpls.2020.617779/full
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AT barbarakarpinska heatinducedoxidationofthenucleiandcytosol
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AT christinehfoyer heatinducedoxidationofthenucleiandcytosol
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