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Brassinosteroids Inhibit Autotropic Root Straightening by Modifying Filamentous-Actin Organization and Dynamics

When positioned horizontally, roots grow down toward the direction of gravity. This phenomenon, called gravitropism, is influenced by most of the major plant hormones including brassinosteroids. Epi-brassinolide (eBL) was previously shown to enhance root gravitropism, a phenomenon similar to the res...

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Autores principales: de Bang, Louise, Paez-Garcia, Ana, Cannon, Ashley E., Chin, Sabrina, Kolape, Jaydeep, Liao, Fuqi, Sparks, J. Alan, Jiang, Qingzhen, Blancaflor, Elison B.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7010715/
https://www.ncbi.nlm.nih.gov/pubmed/32117357
http://dx.doi.org/10.3389/fpls.2020.00005
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author de Bang, Louise
Paez-Garcia, Ana
Cannon, Ashley E.
Chin, Sabrina
Kolape, Jaydeep
Liao, Fuqi
Sparks, J. Alan
Jiang, Qingzhen
Blancaflor, Elison B.
author_facet de Bang, Louise
Paez-Garcia, Ana
Cannon, Ashley E.
Chin, Sabrina
Kolape, Jaydeep
Liao, Fuqi
Sparks, J. Alan
Jiang, Qingzhen
Blancaflor, Elison B.
author_sort de Bang, Louise
collection PubMed
description When positioned horizontally, roots grow down toward the direction of gravity. This phenomenon, called gravitropism, is influenced by most of the major plant hormones including brassinosteroids. Epi-brassinolide (eBL) was previously shown to enhance root gravitropism, a phenomenon similar to the response of roots exposed to the actin inhibitor, latrunculin B (LatB). This led us to hypothesize that eBL might enhance root gravitropism through its effects on filamentous-actin (F-actin). This hypothesis was tested by comparing gravitropic responses of maize (Zea mays) roots treated with eBL or LatB. LatB- and eBL-treated roots displayed similar enhanced downward growth compared with controls when vertical roots were oriented horizontally. Moreover, the effects of the two compounds on root growth directionality were more striking on a slowly-rotating two-dimensional clinostat. Both compounds inhibited autotropism, a process in which the root straightened after the initial gravistimulus was withdrawn by clinorotation. Although eBL reduced F-actin density in chemically-fixed Z. mays roots, the impact was not as strong as that of LatB. Modification of F-actin organization after treatment with both compounds was also observed in living roots of barrel medic (Medicago truncatula) seedlings expressing genetically encoded F-actin reporters. Like in fixed Z. mays roots, eBL effects on F-actin in living M. truncatula roots were modest compared with those of LatB. Furthermore, live cell imaging revealed a decrease in global F-actin dynamics in hypocotyls of etiolated M. truncatula seedlings treated with eBL compared to controls. Collectively, our data indicate that eBL-and LatB-induced enhancement of root gravitropism can be explained by inhibited autotropic root straightening, and that eBL affects this process, in part, by modifying F-actin organization and dynamics.
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spelling pubmed-70107152020-02-28 Brassinosteroids Inhibit Autotropic Root Straightening by Modifying Filamentous-Actin Organization and Dynamics de Bang, Louise Paez-Garcia, Ana Cannon, Ashley E. Chin, Sabrina Kolape, Jaydeep Liao, Fuqi Sparks, J. Alan Jiang, Qingzhen Blancaflor, Elison B. Front Plant Sci Plant Science When positioned horizontally, roots grow down toward the direction of gravity. This phenomenon, called gravitropism, is influenced by most of the major plant hormones including brassinosteroids. Epi-brassinolide (eBL) was previously shown to enhance root gravitropism, a phenomenon similar to the response of roots exposed to the actin inhibitor, latrunculin B (LatB). This led us to hypothesize that eBL might enhance root gravitropism through its effects on filamentous-actin (F-actin). This hypothesis was tested by comparing gravitropic responses of maize (Zea mays) roots treated with eBL or LatB. LatB- and eBL-treated roots displayed similar enhanced downward growth compared with controls when vertical roots were oriented horizontally. Moreover, the effects of the two compounds on root growth directionality were more striking on a slowly-rotating two-dimensional clinostat. Both compounds inhibited autotropism, a process in which the root straightened after the initial gravistimulus was withdrawn by clinorotation. Although eBL reduced F-actin density in chemically-fixed Z. mays roots, the impact was not as strong as that of LatB. Modification of F-actin organization after treatment with both compounds was also observed in living roots of barrel medic (Medicago truncatula) seedlings expressing genetically encoded F-actin reporters. Like in fixed Z. mays roots, eBL effects on F-actin in living M. truncatula roots were modest compared with those of LatB. Furthermore, live cell imaging revealed a decrease in global F-actin dynamics in hypocotyls of etiolated M. truncatula seedlings treated with eBL compared to controls. Collectively, our data indicate that eBL-and LatB-induced enhancement of root gravitropism can be explained by inhibited autotropic root straightening, and that eBL affects this process, in part, by modifying F-actin organization and dynamics. Frontiers Media S.A. 2020-02-04 /pmc/articles/PMC7010715/ /pubmed/32117357 http://dx.doi.org/10.3389/fpls.2020.00005 Text en Copyright © 2020 de Bang, Paez-Garcia, Cannon, Chin, Kolape, Liao, Sparks, Jiang and Blancaflor http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
de Bang, Louise
Paez-Garcia, Ana
Cannon, Ashley E.
Chin, Sabrina
Kolape, Jaydeep
Liao, Fuqi
Sparks, J. Alan
Jiang, Qingzhen
Blancaflor, Elison B.
Brassinosteroids Inhibit Autotropic Root Straightening by Modifying Filamentous-Actin Organization and Dynamics
title Brassinosteroids Inhibit Autotropic Root Straightening by Modifying Filamentous-Actin Organization and Dynamics
title_full Brassinosteroids Inhibit Autotropic Root Straightening by Modifying Filamentous-Actin Organization and Dynamics
title_fullStr Brassinosteroids Inhibit Autotropic Root Straightening by Modifying Filamentous-Actin Organization and Dynamics
title_full_unstemmed Brassinosteroids Inhibit Autotropic Root Straightening by Modifying Filamentous-Actin Organization and Dynamics
title_short Brassinosteroids Inhibit Autotropic Root Straightening by Modifying Filamentous-Actin Organization and Dynamics
title_sort brassinosteroids inhibit autotropic root straightening by modifying filamentous-actin organization and dynamics
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7010715/
https://www.ncbi.nlm.nih.gov/pubmed/32117357
http://dx.doi.org/10.3389/fpls.2020.00005
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