Abstract
Hexaploid bread wheat (Triticum aestivum L., genome BBAADD) is generally more salt tolerant than its tetraploid wheat progenitor (Triticum turgidum L.). However, little is known about the physiological basis of this trait or about the relative contributions of allohexaploidization and subsequent evolutionary genetic changes on the trait development. Here, we compared the salt tolerance of a synthetic allohexaploid wheat (neo-6x) with its tetraploid (T. turgidum; BBAA) and diploid (Aegilops tauschii; DD) parents, as well as a natural hexaploid bread wheat (nat-6x). We studied 92 morphophysiological traits and analyzed homeologous gene expression of a major salt-tolerance gene High-Affinity K(+) Transporter 1;5 (HKT1;5). We observed that under salt stress, neo-6x exhibited higher fitness than both of its parental genotypes due to inheritance of favorable traits like higher germination rate from the 4x parent and the stronger root Na(+) retention capacity from the 2x parent. Moreover, expression of the D-subgenome HKT1;5 homeolog, which is responsible for Na(+) removal from the xylem vessels, showed an immediate transcriptional reprogramming following allohexaploidization, i.e., from constitutive high basal expression in Ae. tauschii (2x) to salt-induced expression in neo-6x. This phenomenon was also witnessed in the nat-6x. An integrated analysis of 92 traits showed that, under salt-stress conditions, neo-6x resembled more closely the 2x than the 4x parent, suggesting that the salt stress induces enhanced expressivity of the D-subgenome homeologs in the synthetic hexaploid wheat. Collectively, the results suggest that condition-dependent functionalization of the subgenomes might have contributed to the wide-ranging adaptability of natural hexaploid wheat.
Keywords
Na+ homeostasis
salinity tolerance
transcriptional rewiring
MeSH Terms
Chromosomes, Plant/genetics
Diploidy
Evolution, Molecular
Genetic Fitness
Genome, Plant
Nitrogen/metabolism
Osmotic Pressure
Photosynthesis/genetics
Polyploidy
Salinity
Salt Tolerance/genetics,physiology
Sodium/metabolism
Tetraploidy
Triticum/genetics,physiology
Chemicals
Sodium
Nitrogen
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Yang Chunwu
Key Laboratory of Molecular Epigenetics of Ministry of Education, Northeast Normal University, Changchun 130024, China;
Zhao Long
Key Laboratory of Molecular Epigenetics of Ministry of Education, Northeast Normal University, Changchun 130024, China;
Zhang Huakun
Key Laboratory of Molecular Epigenetics of Ministry of Education, Northeast Normal University, Changchun 130024, China;
Yang Zongze
Key Laboratory of Molecular Epigenetics of Ministry of Education, Northeast Normal University, Changchun 130024, China;
Wang Huan
Department of Agronomy, Jilin Agricultural University, Changchun 130118, China; and.
Wen Shanshan
Key Laboratory of Molecular Epigenetics of Ministry of Education, Northeast Normal University, Changchun 130024, China;Department of Crop and Soil Sciences.
Zhang Chunyu
Key Laboratory of Molecular Epigenetics of Ministry of Education, Northeast Normal University, Changchun 130024, China;
Rustgi Sachin
Department of Crop and Soil Sciences,School of Molecular Biosciences, andCenter for Reproductive Biology, Washington State University, Pullman, WA 99164 diter@wsu.edu baoliu@nenu.edu.cn rustgi@wsu.edu.
von Wettstein Diter
Department of Crop and Soil Sciences,School of Molecular Biosciences, andCenter for Reproductive Biology, Washington State University, Pullman, WA 99164 diter@wsu.edu baoliu@nenu.edu.cn rustgi@wsu.edu.
Liu Bao
Key Laboratory of Molecular Epigenetics of Ministry of Education, Northeast Normal University, Changchun 130024, China; diter@wsu.edu baoliu@nenu.edu.cn rustgi@wsu.edu.
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