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Transcriptional network underpinning ploidy-related elevated leaf potassium in neo-tetraploids

Title: Transcriptional network underpinning ploidy-related elevated leaf potassium in neo-tetraploids
Authors: Fischer, Sina; Flis, Paulina; Zhao, Fang-Jie; Salt, David E
Contributors: DFG; Royal Society; University of Nottingham (Nottingham Research Fellowship and the Future Food Beacon of Excellence; National Science Foundation Council of China (NSFC) International Collaborative Project
Source: Plant Physiology ; volume 190, issue 3, page 1715-1730 ; ISSN 0032-0889 1532-2548
Publisher Information: Oxford University Press (OUP)
Publication Year: 2022
Description: Whole-genome duplication generates a tetraploid from a diploid. Newly created tetraploids (neo-tetraploids) of Arabidopsis (Arabidopsis thaliana) have elevated leaf potassium (K), compared to their diploid progenitor. Micro-grafting has previously established that this elevated leaf K is driven by processes within the root. Here, mutational analysis revealed that the K+-uptake transporters K+ TRANSPORTER 1 (AKT1) and HIGH AFFINITY K+ TRANSPORTER 5 (HAK5) are not necessary for the difference in leaf K caused by whole-genome duplication. However, the endodermis and salt overly sensitive and abscisic acid-related signaling were necessary for the elevated leaf K in neo-tetraploids. Contrasting the root transcriptomes of neo-tetraploid and diploid wild-type and mutants that suppress the neo-tetraploid elevated leaf K phenotype allowed us to identify a core set of 92 differentially expressed genes associated with the difference in leaf K between neo-tetraploids and their diploid progenitor. This core set of genes connected whole-genome duplication with the difference in leaf K between neo-tetraploids and their diploid progenitors. The set of genes is enriched in functions such as cell wall and Casparian strip development and ion transport in the endodermis, root hairs, and procambium. This gene set provides tools to test the intriguing idea of recreating the physiological effects of whole-genome duplication within a diploid genome.
Document Type: article in journal/newspaper
Language: English
DOI: 10.1093/plphys/kiac360
DOI: 10.1093/plphys/kiac360/45609007/kiac360.pdf
Availability: https://doi.org/10.1093/plphys/kiac360; https://academic.oup.com/plphys/advance-article-pdf/doi/10.1093/plphys/kiac360/45609007/kiac360.pdf; https://academic.oup.com/plphys/article-pdf/190/3/1715/46651751/kiac360.pdf
Rights: https://creativecommons.org/licenses/by/4.0/
Accession Number: edsbas.B53DC36C
Database: BASE