» Articles » PMID: 37351659

Domestication Has Altered the ABA and Gibberellin Profiles in Developing Pea Seeds

Overview
Journal Planta
Specialty Biology
Date 2023 Jun 23
PMID 37351659
Authors
Affiliations
Soon will be listed here.
Abstract

We showed that wild pea seeds contained a more diverse combination of bioactive GAs and had higher ABA content than domesticated peas. Although the role of abscisic acid (ABA) and gibberellins (GAs) interplay has been extensively studied in Arabidopsis and cereals models, comparatively little is known about the effect of domestication on the level of phytohormones in legume seeds. In legumes, as in other crops, seed dormancy has been largely or entirely removed during domestication. In this study, we have measured the endogenous levels of ABA and GAs comparatively between wild and domesticated pea seeds during their development. We have shown that wild seeds contained more ABA than domesticated ones, which could be important for preparing the seeds for the period of dormancy. ABA was catabolised particularly by an 8´-hydroxylation pathway, and dihydrophaseic acid was the main catabolite in seed coats as well as embryos. Besides, the seed coats of wild and pigmented cultivated genotypes were characterised by a broader spectrum of bioactive GAs compared to non-pigmented domesticated seeds. GAs in both seed coat and embryo were synthesized mainly by a 13-hydroxylation pathway, with GA being the most abundant in the seed coat and GA in the embryos. Measuring seed water content and water loss indicated domesticated pea seeds´ desiccation was slower than that of wild pea seeds. Altogether, we showed that pea domestication led to a change in bioactive GA composition and a lower ABA content during seed development.

Citing Articles

DOG1 controls dormancy independently of ABA core signaling kinases regulation by preventing AFP dephosphorylation through AHG1.

Kruger T, Brandt D, Sodenkamp J, Gasper M, Romera-Branchat M, Ahloumessou F Sci Adv. 2025; 11(9):eadr8502.

PMID: 40020062 PMC: 11870083. DOI: 10.1126/sciadv.adr8502.


Exogenous putrescine application imparts salt stress-induced oxidative stress tolerance via regulating antioxidant activity, potassium uptake, and abscisic acid to gibberellin ratio in Zinnia flowers.

Mohammadi M, Nezamdoost D, Khosravi Far F, Zulfiqar F, Eghlima G, Aghamir F BMC Plant Biol. 2024; 24(1):865.

PMID: 39285359 PMC: 11403821. DOI: 10.1186/s12870-024-05560-0.


In situ separation and visualization of isomeric auxin derivatives in Arabidopsis by ion mobility mass spectrometry imaging.

Zhang C, Bieleszova K, Zukauskaite A, Hladik P, Gruz J, Novak O Anal Bioanal Chem. 2023; 416(1):125-139.

PMID: 37872415 DOI: 10.1007/s00216-023-04996-x.

References
1.
Ali F, Qanmber G, Li F, Wang Z . Updated role of ABA in seed maturation, dormancy, and germination. J Adv Res. 2022; 35:199-214. PMC: 8721241. DOI: 10.1016/j.jare.2021.03.011. View

2.
Alseekh S, Scossa F, Wen W, Luo J, Yan J, Beleggia R . Domestication of Crop Metabolomes: Desired and Unintended Consequences. Trends Plant Sci. 2021; 26(6):650-661. DOI: 10.1016/j.tplants.2021.02.005. View

3.
An J, Yao J, Xu R, You C, Wang X, Hao Y . Apple bZIP transcription factor MdbZIP44 regulates abscisic acid-promoted anthocyanin accumulation. Plant Cell Environ. 2018; 41(11):2678-2692. DOI: 10.1111/pce.13393. View

4.
Balarynova J, Klcova B, Sekaninova J, Kobrlova L, Cechova M, Krejci P . The loss of polyphenol oxidase function is associated with hilum pigmentation and has been selected during pea domestication. New Phytol. 2022; 235(5):1807-1821. DOI: 10.1111/nph.18256. View

5.
Cechova M, Valkova M, Hradilova I, Janska A, Soukup A, Smykal P . Towards Better Understanding of Pea Seed Dormancy Using Laser Desorption/Ionization Mass Spectrometry. Int J Mol Sci. 2017; 18(10). PMC: 5666877. DOI: 10.3390/ijms18102196. View