Submergence promotes auxin-induced callus formation through ethylene-mediated post-transcriptional control of auxin receptors

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Title
Submergence promotes auxin-induced callus formation through ethylene-mediated post-transcriptional control of auxin receptors
Author(s)
Seung Yong Shin; Y Choi; S G Kim; Su-Jin Park; Ji-Sun Park; Ki Beom Moon; Hyun-Soon Kim; Jae Heung Jeon; Hye Sun ChoHyo Jun Lee
Bibliographic Citation
Molecular Plant, vol. 15, no. 12, pp. 1947-1961
Publication Year
2022
Abstract
Plant cells in damaged tissue can be reprogrammed to acquire pluripotency and induce callus formation. However, in the aboveground organs of many species, somatic cells that are distal to the wound site become less sensitive to auxin-induced callus formation, suggesting the existence of repressive regulatory mechanisms that are largely unknown. Here we reveal that submergence-induced ethylene signals promote callus formation by releasing post-transcriptional silencing of auxin receptor transcripts in non-wounded regions. We determined that short-term submergence of intact seedlings induces auxin-mediated cell dedifferentiation across the entirety of Arabidopsis thaliana explants. The constitutive triple response 1-1 (ctr1-1) mutation induced callus formation in explants without submergence, suggesting that ethylene facilitates cell dedifferentiation. We show that ETHYLENE-INSENSITIVE 2 (EIN2) post-transcriptionally regulates the abundance of transcripts for auxin receptor genes by facilitating microRNA393 degradation. Submergence-induced calli in non-wounded regions were suitable for shoot regeneration, similar to those near the wound site. We also observed submergence-promoted callus formation in Chinese cabbage (Brassica rapa), indicating that this may be a conserved mechanism in other species. Our study identifies previously unknown regulatory mechanisms by which ethylene promotes cell dedifferentiation and provides a new approach for boosting callus induction efficiency in shoot explants.
Keyword
Cell dedifferentiationAuxin signalingEthyleneCallus formationEIN2
ISSN
1674-2052
Publisher
Elsevier-Cell Press
DOI
http://dx.doi.org/10.1016/j.molp.2022.11.001
Type
Article
Appears in Collections:
Division of Research on National Challenges > Plant Systems Engineering Research > 1. Journal Articles
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