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Ethylene inhibits rice root elongation in compacted soil via ABA- and auxin-mediated mechanisms

Soil compaction represents a major agronomic challenge, inhibiting root elongation and impacting crop yields. Roots use ethylene to sense soil compaction as the restricted air space causes this gaseous signal to accumulate around root tips. Ethylene inhibits root elongation and promotes radial expan...

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Autores principales: Huang, Guoqiang, Kilic, Azad, Karady, Michal, Zhang, Jiao, Mehra, Poonam, Song, Xiaoyun, Sturrock, Craig J., Zhu, Wanwan, Qin, Hua, Hartman, Sjon, Schneider, Hannah M., Bhosale, Rahul, Dodd, Ian C., Sharp, Robert E., Huang, Rongfeng, Mooney, Sacha J., Liang, Wanqi, Bennett, Malcolm J., Zhang, Dabing, Pandey, Bipin K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9335218/
https://www.ncbi.nlm.nih.gov/pubmed/35858424
http://dx.doi.org/10.1073/pnas.2201072119
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author Huang, Guoqiang
Kilic, Azad
Karady, Michal
Zhang, Jiao
Mehra, Poonam
Song, Xiaoyun
Sturrock, Craig J.
Zhu, Wanwan
Qin, Hua
Hartman, Sjon
Schneider, Hannah M.
Bhosale, Rahul
Dodd, Ian C.
Sharp, Robert E.
Huang, Rongfeng
Mooney, Sacha J.
Liang, Wanqi
Bennett, Malcolm J.
Zhang, Dabing
Pandey, Bipin K.
author_facet Huang, Guoqiang
Kilic, Azad
Karady, Michal
Zhang, Jiao
Mehra, Poonam
Song, Xiaoyun
Sturrock, Craig J.
Zhu, Wanwan
Qin, Hua
Hartman, Sjon
Schneider, Hannah M.
Bhosale, Rahul
Dodd, Ian C.
Sharp, Robert E.
Huang, Rongfeng
Mooney, Sacha J.
Liang, Wanqi
Bennett, Malcolm J.
Zhang, Dabing
Pandey, Bipin K.
author_sort Huang, Guoqiang
collection PubMed
description Soil compaction represents a major agronomic challenge, inhibiting root elongation and impacting crop yields. Roots use ethylene to sense soil compaction as the restricted air space causes this gaseous signal to accumulate around root tips. Ethylene inhibits root elongation and promotes radial expansion in compacted soil, but its mechanistic basis remains unclear. Here, we report that ethylene promotes abscisic acid (ABA) biosynthesis and cortical cell radial expansion. Rice mutants of ABA biosynthetic genes had attenuated cortical cell radial expansion in compacted soil, leading to better penetration. Soil compaction-induced ethylene also up-regulates the auxin biosynthesis gene OsYUC8. Mutants lacking OsYUC8 are better able to penetrate compacted soil. The auxin influx transporter OsAUX1 is also required to mobilize auxin from the root tip to the elongation zone during a root compaction response. Moreover, osaux1 mutants penetrate compacted soil better than the wild-type roots and do not exhibit cortical cell radial expansion. We conclude that ethylene uses auxin and ABA as downstream signals to modify rice root cell elongation and radial expansion, causing root tips to swell and reducing their ability to penetrate compacted soil.
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spelling pubmed-93352182022-07-30 Ethylene inhibits rice root elongation in compacted soil via ABA- and auxin-mediated mechanisms Huang, Guoqiang Kilic, Azad Karady, Michal Zhang, Jiao Mehra, Poonam Song, Xiaoyun Sturrock, Craig J. Zhu, Wanwan Qin, Hua Hartman, Sjon Schneider, Hannah M. Bhosale, Rahul Dodd, Ian C. Sharp, Robert E. Huang, Rongfeng Mooney, Sacha J. Liang, Wanqi Bennett, Malcolm J. Zhang, Dabing Pandey, Bipin K. Proc Natl Acad Sci U S A Biological Sciences Soil compaction represents a major agronomic challenge, inhibiting root elongation and impacting crop yields. Roots use ethylene to sense soil compaction as the restricted air space causes this gaseous signal to accumulate around root tips. Ethylene inhibits root elongation and promotes radial expansion in compacted soil, but its mechanistic basis remains unclear. Here, we report that ethylene promotes abscisic acid (ABA) biosynthesis and cortical cell radial expansion. Rice mutants of ABA biosynthetic genes had attenuated cortical cell radial expansion in compacted soil, leading to better penetration. Soil compaction-induced ethylene also up-regulates the auxin biosynthesis gene OsYUC8. Mutants lacking OsYUC8 are better able to penetrate compacted soil. The auxin influx transporter OsAUX1 is also required to mobilize auxin from the root tip to the elongation zone during a root compaction response. Moreover, osaux1 mutants penetrate compacted soil better than the wild-type roots and do not exhibit cortical cell radial expansion. We conclude that ethylene uses auxin and ABA as downstream signals to modify rice root cell elongation and radial expansion, causing root tips to swell and reducing their ability to penetrate compacted soil. National Academy of Sciences 2022-07-18 2022-07-26 /pmc/articles/PMC9335218/ /pubmed/35858424 http://dx.doi.org/10.1073/pnas.2201072119 Text en Copyright © 2022 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by/4.0/This open access article is distributed under Creative Commons Attribution License 4.0 (CC BY) (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Biological Sciences
Huang, Guoqiang
Kilic, Azad
Karady, Michal
Zhang, Jiao
Mehra, Poonam
Song, Xiaoyun
Sturrock, Craig J.
Zhu, Wanwan
Qin, Hua
Hartman, Sjon
Schneider, Hannah M.
Bhosale, Rahul
Dodd, Ian C.
Sharp, Robert E.
Huang, Rongfeng
Mooney, Sacha J.
Liang, Wanqi
Bennett, Malcolm J.
Zhang, Dabing
Pandey, Bipin K.
Ethylene inhibits rice root elongation in compacted soil via ABA- and auxin-mediated mechanisms
title Ethylene inhibits rice root elongation in compacted soil via ABA- and auxin-mediated mechanisms
title_full Ethylene inhibits rice root elongation in compacted soil via ABA- and auxin-mediated mechanisms
title_fullStr Ethylene inhibits rice root elongation in compacted soil via ABA- and auxin-mediated mechanisms
title_full_unstemmed Ethylene inhibits rice root elongation in compacted soil via ABA- and auxin-mediated mechanisms
title_short Ethylene inhibits rice root elongation in compacted soil via ABA- and auxin-mediated mechanisms
title_sort ethylene inhibits rice root elongation in compacted soil via aba- and auxin-mediated mechanisms
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9335218/
https://www.ncbi.nlm.nih.gov/pubmed/35858424
http://dx.doi.org/10.1073/pnas.2201072119
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