The regeneration factors ERF114 and ERF115 regulate auxin-mediated lateral root development in response to mechanical cues
- Author
- Balkan Canher (UGent) , Fien Lanssens (UGent) , Ai Zhang, Anchal Bisht, Shamik Mazumdar, Jefri Heyman (UGent) , Sebastian Wolf, Charles W. Melnyk and Lieven De Veylder (UGent)
- Organization
- Project
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- IDENTIFICATION OF TISSUE REGENERATION-CONTROLLING ERF-GRAS HETERODIMERIC TRANSCRIPTION FACTOR COMPLEXES AND THEIR SUBSTRATES
- Mapping the evolutionary role of the ERF115 transcriptional activator in the process of wound-induced regeneration
- Improving lateral root formation and propagation through cuttings in different tree species.
- Abstract
- Plants show an unparalleled regenerative capacity, allowing them to survive severe stress conditions, such as injury, herbivory attack and harsh weather conditions. This potential not only replenishes tissues and restores damaged organs, but can also give rise to whole plant bodies. Despite the intertwined nature of development and regeneration, upstream cues and signaling mechanisms that commonly activate organogenesis are largely unknown. Here, we demonstrate that next to being activators of regeneration, ETHYLENE RESPONSE FACTOR 114 (ERF114) and ERF115 govern developmental growth in the absence of wounding or injury. Increased ERF114 and ERF115 activity enhances auxin sensitivity, which is correlated with enhanced xylem maturation and lateral root formation, whereas their knockout results in a decrease in lateral roots. Moreover, we provide evidence that mechanical cues contribute to ERF114 and ERF115 expression in correlation with BZR1-mediated brassinosteroid signaling under both regenerative and developmental conditions. Antagonistically, cell wall integrity surveillance via mechanosensory FERONIA signaling suppresses their expression under both conditions. Our data suggest a molecular framework in which cell wall signals and mechanical strains regulate organ development and regenerative responses via ERF114 and ERF115 mediated auxin signaling.
- Keywords
- Auxin, Cell wall integrity, ERF114, FERONIA, Lateral root, Mechanical stress, CELL-WALL INTEGRITY, FACTOR MONOPTEROS, SHOOT, GENE, ORGANOGENESIS, INITIATION, DIVISION, PATHWAYS, DYNAMICS, MERISTEM
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Citation
Please use this url to cite or link to this publication: http://hdl.handle.net/1854/LU-8765323
- MLA
- Canher, Balkan, et al. “The Regeneration Factors ERF114 and ERF115 Regulate Auxin-Mediated Lateral Root Development in Response to Mechanical Cues.” MOLECULAR PLANT, vol. 15, no. 10, 2022, pp. 1543–57, doi:10.1016/j.molp.2022.08.008.
- APA
- Canher, B., Lanssens, F., Zhang, A., Bisht, A., Mazumdar, S., Heyman, J., … De Veylder, L. (2022). The regeneration factors ERF114 and ERF115 regulate auxin-mediated lateral root development in response to mechanical cues. MOLECULAR PLANT, 15(10), 1543–1557. https://doi.org/10.1016/j.molp.2022.08.008
- Chicago author-date
- Canher, Balkan, Fien Lanssens, Ai Zhang, Anchal Bisht, Shamik Mazumdar, Jefri Heyman, Sebastian Wolf, Charles W. Melnyk, and Lieven De Veylder. 2022. “The Regeneration Factors ERF114 and ERF115 Regulate Auxin-Mediated Lateral Root Development in Response to Mechanical Cues.” MOLECULAR PLANT 15 (10): 1543–57. https://doi.org/10.1016/j.molp.2022.08.008.
- Chicago author-date (all authors)
- Canher, Balkan, Fien Lanssens, Ai Zhang, Anchal Bisht, Shamik Mazumdar, Jefri Heyman, Sebastian Wolf, Charles W. Melnyk, and Lieven De Veylder. 2022. “The Regeneration Factors ERF114 and ERF115 Regulate Auxin-Mediated Lateral Root Development in Response to Mechanical Cues.” MOLECULAR PLANT 15 (10): 1543–1557. doi:10.1016/j.molp.2022.08.008.
- Vancouver
- 1.Canher B, Lanssens F, Zhang A, Bisht A, Mazumdar S, Heyman J, et al. The regeneration factors ERF114 and ERF115 regulate auxin-mediated lateral root development in response to mechanical cues. MOLECULAR PLANT. 2022;15(10):1543–57.
- IEEE
- [1]B. Canher et al., “The regeneration factors ERF114 and ERF115 regulate auxin-mediated lateral root development in response to mechanical cues,” MOLECULAR PLANT, vol. 15, no. 10, pp. 1543–1557, 2022.
@article{8765323,
abstract = {{Plants show an unparalleled regenerative capacity, allowing them to survive severe stress conditions, such as injury, herbivory attack and harsh weather conditions. This potential not only replenishes tissues and restores damaged organs, but can also give rise to whole plant bodies. Despite the intertwined nature of development and regeneration, upstream cues and signaling mechanisms that commonly activate organogenesis are largely unknown. Here, we demonstrate that next to being activators of regeneration, ETHYLENE RESPONSE FACTOR 114 (ERF114) and ERF115 govern developmental growth in the absence of wounding or injury. Increased ERF114 and ERF115 activity enhances auxin sensitivity, which is correlated with enhanced xylem maturation and lateral root formation, whereas their knockout results in a decrease in lateral roots. Moreover, we provide evidence that mechanical cues contribute to ERF114 and ERF115 expression in correlation with BZR1-mediated brassinosteroid signaling under both regenerative and developmental conditions. Antagonistically, cell wall integrity surveillance via mechanosensory FERONIA signaling suppresses their expression under both conditions. Our data suggest a molecular framework in which cell wall signals and mechanical strains regulate organ development and regenerative responses via ERF114 and ERF115 mediated auxin signaling.}},
author = {{Canher, Balkan and Lanssens, Fien and Zhang, Ai and Bisht, Anchal and Mazumdar, Shamik and Heyman, Jefri and Wolf, Sebastian and Melnyk, Charles W. and De Veylder, Lieven}},
issn = {{1674-2052}},
journal = {{MOLECULAR PLANT}},
keywords = {{Auxin,Cell wall integrity,ERF114,FERONIA,Lateral root,Mechanical stress,CELL-WALL INTEGRITY,FACTOR MONOPTEROS,SHOOT,GENE,ORGANOGENESIS,INITIATION,DIVISION,PATHWAYS,DYNAMICS,MERISTEM}},
language = {{eng}},
number = {{10}},
pages = {{1543--1557}},
title = {{The regeneration factors ERF114 and ERF115 regulate auxin-mediated lateral root development in response to mechanical cues}},
url = {{http://doi.org/10.1016/j.molp.2022.08.008}},
volume = {{15}},
year = {{2022}},
}
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