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Metabolomics and Physiological Insights into the Ability of Exogenously Applied Chlorogenic Acid and Hesperidin to Modulate Salt Stress in Lettuce Distinctively

Authors :
Leilei Zhang
Begoña Miras-Moreno
Evren Yildiztugay
Ceyda Ozfidan-Konakci
Busra Arikan
Fevzi Elbasan
Gunes Ak
Youssef Rouphael
Gokhan Zengin
Luigi Lucini
Source :
Molecules, Vol 26, Iss 20, p 6291 (2021)
Publication Year :
2021
Publisher :
MDPI AG, 2021.

Abstract

Recent studies in the agronomic field indicate that the exogenous application of polyphenols can provide tolerance against various stresses in plants. However, the molecular processes underlying stress mitigation remain unclear, and little is known about the impact of exogenously applied phenolics, especially in combination with salinity. In this work, the impacts of exogenously applied chlorogenic acid (CA), hesperidin (HES), and their combination (HES + CA) have been investigated in lettuce (Lactuca sativa L.) through untargeted metabolomics to evaluate mitigation effects against salinity. Growth parameters, physiological measurements, leaf relative water content, and osmotic potential as well as gas exchange parameters were also measured. As expected, salinity produced a significant decline in the physiological and biochemical parameters of lettuce. However, the treatments with exogenous phenolics, particularly HES and HES + CA, allowed lettuce to cope with salt stress condition. Interestingly, the treatments triggered a broad metabolic reprogramming that involved secondary metabolism and small molecules such as electron carriers, enzyme cofactors, and vitamins. Under salinity conditions, CA and HES + CA distinctively elicited secondary metabolism, nitrogen-containing compounds, osmoprotectants, and polyamines.

Details

Language :
English
ISSN :
14203049
Volume :
26
Issue :
20
Database :
Directory of Open Access Journals
Journal :
Molecules
Publication Type :
Academic Journal
Accession number :
edsdoj.563955d89e9481595cbfb9b3d125955
Document Type :
article
Full Text :
https://doi.org/10.3390/molecules26206291