Remodeling of Root Growth Under Combined Arsenic and Hypoxia Stress Is Linked to Nutrient Deprivation

Root architecture responds to environmental stress. Stress-induced metabolic and nutritional changes affect the endogenous root development program. Transcriptional and translational changes realize the switch between stem cell proliferation and cell differentiation, lateral root or root hair format...

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Main Authors: Vijay Kumar, Lara Vogelsang, Romy R. Schmidt, Shanti S. Sharma, Thorsten Seidel, Karl-Josef Dietz
Format: Article
Language:English
Published: Frontiers Media S.A. 2020-10-01
Series:Frontiers in Plant Science
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fpls.2020.569687/full
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spelling doaj-182c71ccc76e42e99afa6d084862822b2020-11-25T03:32:45ZengFrontiers Media S.A.Frontiers in Plant Science1664-462X2020-10-011110.3389/fpls.2020.569687569687Remodeling of Root Growth Under Combined Arsenic and Hypoxia Stress Is Linked to Nutrient DeprivationVijay Kumar0Vijay Kumar1Lara Vogelsang2Romy R. Schmidt3Shanti S. Sharma4Thorsten Seidel5Karl-Josef Dietz6Department of Biochemistry and Physiology of Plants, Faculty of Biology, University of Bielefeld, Bielefeld, GermanyDepartment of Biosciences, Himachal Pradesh University, Shimla, IndiaDepartment of Biochemistry and Physiology of Plants, Faculty of Biology, University of Bielefeld, Bielefeld, GermanyDepartment of Plant Biotechnology, Faculty of Biology, University of Bielefeld, Bielefeld, GermanyDepartment of Botany, School of Life Sciences, Sikkim University, Gangtok, IndiaDepartment of Biochemistry and Physiology of Plants, Faculty of Biology, University of Bielefeld, Bielefeld, GermanyDepartment of Biochemistry and Physiology of Plants, Faculty of Biology, University of Bielefeld, Bielefeld, GermanyRoot architecture responds to environmental stress. Stress-induced metabolic and nutritional changes affect the endogenous root development program. Transcriptional and translational changes realize the switch between stem cell proliferation and cell differentiation, lateral root or root hair formation and root functionality for stress acclimation. The current work explores the effects of stress combination of arsenic toxicity (As) and hypoxia (Hpx) on root development in Arabidopsis thaliana. As revealed previously, combined As and Hpx treatment leads to severe nutritional disorder evident from deregulation of root transcriptome and plant mineral contents. Both As and Hpx were identified to pose stress-specific constraints on root development that lead to unique root growth phenotype under their combination. Besides inhibition of root apical meristem (RAM) activity under all stresses, As induced lateral root growth while root hair density and lengths were strongly increased by Hpx and HpxAs-treatments.A dual stimulation of phosphate (Pi)-starvation response was observed for HpxAs-treated plant roots; however, the response under HpxAs aligned more with Hpx than As. Transcriptional evidence along with biochemical data suggests involvement of PHOSPHATE STARVATION RESPONSE 1; PHR1-dependent systemic signaling. Pi metabolism-related transcripts in close association with cellular iron homeostasis modulate root development under HpxAs. Early redox potential changes in meristematic cells, differential ROS accumulation in root hair zone cell layers and strong deregulation of NADPH oxidases, NADPH-dependent oxidoreductases and peroxidases signify a role of redox and ROS signaling in root architecture remodeling under HpxAs. Differential aquaporin expression suggests transmembrane ROS transport to regulate root hair induction and growth. Reorganization of energy metabolism through NO-dependent alternate oxidase, lactate fermentation, and phosphofructokinase seems crucial under HpxAs. TOR and SnRK-signaling network components were potentially involved in control of sustainable utilization of available energy reserves for root hair growth under combined stress as well as recovery on reaeration. Findings are discussed in context of combined stress-induced signaling in regulation of root development in contrast to As and Hpx alone.https://www.frontiersin.org/articles/10.3389/fpls.2020.569687/fullroot hairsmeristemphosphateironhypoxiaarsenic
collection DOAJ
language English
format Article
sources DOAJ
author Vijay Kumar
Vijay Kumar
Lara Vogelsang
Romy R. Schmidt
Shanti S. Sharma
Thorsten Seidel
Karl-Josef Dietz
spellingShingle Vijay Kumar
Vijay Kumar
Lara Vogelsang
Romy R. Schmidt
Shanti S. Sharma
Thorsten Seidel
Karl-Josef Dietz
Remodeling of Root Growth Under Combined Arsenic and Hypoxia Stress Is Linked to Nutrient Deprivation
Frontiers in Plant Science
root hairs
meristem
phosphate
iron
hypoxia
arsenic
author_facet Vijay Kumar
Vijay Kumar
Lara Vogelsang
Romy R. Schmidt
Shanti S. Sharma
Thorsten Seidel
Karl-Josef Dietz
author_sort Vijay Kumar
title Remodeling of Root Growth Under Combined Arsenic and Hypoxia Stress Is Linked to Nutrient Deprivation
title_short Remodeling of Root Growth Under Combined Arsenic and Hypoxia Stress Is Linked to Nutrient Deprivation
title_full Remodeling of Root Growth Under Combined Arsenic and Hypoxia Stress Is Linked to Nutrient Deprivation
title_fullStr Remodeling of Root Growth Under Combined Arsenic and Hypoxia Stress Is Linked to Nutrient Deprivation
title_full_unstemmed Remodeling of Root Growth Under Combined Arsenic and Hypoxia Stress Is Linked to Nutrient Deprivation
title_sort remodeling of root growth under combined arsenic and hypoxia stress is linked to nutrient deprivation
publisher Frontiers Media S.A.
series Frontiers in Plant Science
issn 1664-462X
publishDate 2020-10-01
description Root architecture responds to environmental stress. Stress-induced metabolic and nutritional changes affect the endogenous root development program. Transcriptional and translational changes realize the switch between stem cell proliferation and cell differentiation, lateral root or root hair formation and root functionality for stress acclimation. The current work explores the effects of stress combination of arsenic toxicity (As) and hypoxia (Hpx) on root development in Arabidopsis thaliana. As revealed previously, combined As and Hpx treatment leads to severe nutritional disorder evident from deregulation of root transcriptome and plant mineral contents. Both As and Hpx were identified to pose stress-specific constraints on root development that lead to unique root growth phenotype under their combination. Besides inhibition of root apical meristem (RAM) activity under all stresses, As induced lateral root growth while root hair density and lengths were strongly increased by Hpx and HpxAs-treatments.A dual stimulation of phosphate (Pi)-starvation response was observed for HpxAs-treated plant roots; however, the response under HpxAs aligned more with Hpx than As. Transcriptional evidence along with biochemical data suggests involvement of PHOSPHATE STARVATION RESPONSE 1; PHR1-dependent systemic signaling. Pi metabolism-related transcripts in close association with cellular iron homeostasis modulate root development under HpxAs. Early redox potential changes in meristematic cells, differential ROS accumulation in root hair zone cell layers and strong deregulation of NADPH oxidases, NADPH-dependent oxidoreductases and peroxidases signify a role of redox and ROS signaling in root architecture remodeling under HpxAs. Differential aquaporin expression suggests transmembrane ROS transport to regulate root hair induction and growth. Reorganization of energy metabolism through NO-dependent alternate oxidase, lactate fermentation, and phosphofructokinase seems crucial under HpxAs. TOR and SnRK-signaling network components were potentially involved in control of sustainable utilization of available energy reserves for root hair growth under combined stress as well as recovery on reaeration. Findings are discussed in context of combined stress-induced signaling in regulation of root development in contrast to As and Hpx alone.
topic root hairs
meristem
phosphate
iron
hypoxia
arsenic
url https://www.frontiersin.org/articles/10.3389/fpls.2020.569687/full
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