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Design, Synthesis, and Action Mechanism of 1,3-Benzodioxole Derivatives as Potent Auxin Receptor Agonists and Root Growth Promoters

Deeper and longer roots allow crops to survive and flourish, but our understanding of the plant growth regulators promoting root system establishment is limited. Here, we report that, a novel auxin receptor agonist, named K-10, had a remarkable promotive effect on root growth in both Arabidopsis tha...

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Autores principales: Yang, Zhikun, Xu, Jiahui, Du, Lin, Yin, Jiaming, Wang, Zhao, Yi, Fei, Duan, Liusheng, Li, Zhaohu, Wang, Baomin, Shu, Kai, Tan, Weiming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9226723/
https://www.ncbi.nlm.nih.gov/pubmed/35755644
http://dx.doi.org/10.3389/fpls.2022.902902
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author Yang, Zhikun
Xu, Jiahui
Du, Lin
Yin, Jiaming
Wang, Zhao
Yi, Fei
Duan, Liusheng
Li, Zhaohu
Wang, Baomin
Shu, Kai
Tan, Weiming
author_facet Yang, Zhikun
Xu, Jiahui
Du, Lin
Yin, Jiaming
Wang, Zhao
Yi, Fei
Duan, Liusheng
Li, Zhaohu
Wang, Baomin
Shu, Kai
Tan, Weiming
author_sort Yang, Zhikun
collection PubMed
description Deeper and longer roots allow crops to survive and flourish, but our understanding of the plant growth regulators promoting root system establishment is limited. Here, we report that, a novel auxin receptor agonist, named K-10, had a remarkable promotive effect on root growth in both Arabidopsis thaliana and Oryza sativa through the enhancement of root-related signaling responses. Using computer-aided drug discovery approaches, we developed potent lead compound by screening artificial chemicals on the basis of the auxin receptor TIR1 (Transport Inhibitor Response 1), and a series of N-(benzo[d] [1,3] dioxol-5-yl)-2-(one-benzylthio) acetamides, K-1 to K-22, were designed and synthesized. The results of bioassay showed that K-10 exhibited an excellent root growth-promoting activity far exceeding that of NAA (1-naphthylacetic acid). A further morphological investigation of the auxin related mutants (yucQ, tir1) revealed that K-10 had auxin-like physiological functions and was recognized by TIR1, and K-10 significantly enhanced auxin response reporter’s (DR5:GUS) transcriptional activity. Consistently, transcriptome analysis showed that K-10 induced a common transcriptional response with auxin and down-regulated the expression of root growth-inhibiting genes. Further molecular docking analysis revealed that K-10 had a stronger binding ability with TIR1 than NAA. These results indicated that this class of derivatives could be a promising scaffold for the discovery and development of novel auxin receptor agonists, and the employment of K-10 may be effective for enhancing root growth and crop production.
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spelling pubmed-92267232022-06-25 Design, Synthesis, and Action Mechanism of 1,3-Benzodioxole Derivatives as Potent Auxin Receptor Agonists and Root Growth Promoters Yang, Zhikun Xu, Jiahui Du, Lin Yin, Jiaming Wang, Zhao Yi, Fei Duan, Liusheng Li, Zhaohu Wang, Baomin Shu, Kai Tan, Weiming Front Plant Sci Plant Science Deeper and longer roots allow crops to survive and flourish, but our understanding of the plant growth regulators promoting root system establishment is limited. Here, we report that, a novel auxin receptor agonist, named K-10, had a remarkable promotive effect on root growth in both Arabidopsis thaliana and Oryza sativa through the enhancement of root-related signaling responses. Using computer-aided drug discovery approaches, we developed potent lead compound by screening artificial chemicals on the basis of the auxin receptor TIR1 (Transport Inhibitor Response 1), and a series of N-(benzo[d] [1,3] dioxol-5-yl)-2-(one-benzylthio) acetamides, K-1 to K-22, were designed and synthesized. The results of bioassay showed that K-10 exhibited an excellent root growth-promoting activity far exceeding that of NAA (1-naphthylacetic acid). A further morphological investigation of the auxin related mutants (yucQ, tir1) revealed that K-10 had auxin-like physiological functions and was recognized by TIR1, and K-10 significantly enhanced auxin response reporter’s (DR5:GUS) transcriptional activity. Consistently, transcriptome analysis showed that K-10 induced a common transcriptional response with auxin and down-regulated the expression of root growth-inhibiting genes. Further molecular docking analysis revealed that K-10 had a stronger binding ability with TIR1 than NAA. These results indicated that this class of derivatives could be a promising scaffold for the discovery and development of novel auxin receptor agonists, and the employment of K-10 may be effective for enhancing root growth and crop production. Frontiers Media S.A. 2022-06-10 /pmc/articles/PMC9226723/ /pubmed/35755644 http://dx.doi.org/10.3389/fpls.2022.902902 Text en Copyright © 2022 Yang, Xu, Du, Yin, Wang, Yi, Duan, Li, Wang, Shu and Tan. https://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
Yang, Zhikun
Xu, Jiahui
Du, Lin
Yin, Jiaming
Wang, Zhao
Yi, Fei
Duan, Liusheng
Li, Zhaohu
Wang, Baomin
Shu, Kai
Tan, Weiming
Design, Synthesis, and Action Mechanism of 1,3-Benzodioxole Derivatives as Potent Auxin Receptor Agonists and Root Growth Promoters
title Design, Synthesis, and Action Mechanism of 1,3-Benzodioxole Derivatives as Potent Auxin Receptor Agonists and Root Growth Promoters
title_full Design, Synthesis, and Action Mechanism of 1,3-Benzodioxole Derivatives as Potent Auxin Receptor Agonists and Root Growth Promoters
title_fullStr Design, Synthesis, and Action Mechanism of 1,3-Benzodioxole Derivatives as Potent Auxin Receptor Agonists and Root Growth Promoters
title_full_unstemmed Design, Synthesis, and Action Mechanism of 1,3-Benzodioxole Derivatives as Potent Auxin Receptor Agonists and Root Growth Promoters
title_short Design, Synthesis, and Action Mechanism of 1,3-Benzodioxole Derivatives as Potent Auxin Receptor Agonists and Root Growth Promoters
title_sort design, synthesis, and action mechanism of 1,3-benzodioxole derivatives as potent auxin receptor agonists and root growth promoters
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9226723/
https://www.ncbi.nlm.nih.gov/pubmed/35755644
http://dx.doi.org/10.3389/fpls.2022.902902
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