How Does the Seed Pre-Germinative Metabolism Fight Against Imbibition Damage? Emerging Roles of Fatty Acid Cohort and Antioxidant Defence
During seed imbibition, lipids are engaged in membrane reorganization while facing free radical-mediated oxidative injury. In the present work, we explored changes in lipid components at different timepoints of imbibition (0.5, 2, 4, 6, and 8 h) in the legume Medicago truncatula, by combining bioche...
Main Authors: | , , , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
Frontiers Media S.A.
2019-11-01
|
Series: | Frontiers in Plant Science |
Subjects: | |
Online Access: | https://www.frontiersin.org/article/10.3389/fpls.2019.01505/full |
id |
doaj-bc1d73ca36064e999a06b30c015763bd |
---|---|
record_format |
Article |
spelling |
doaj-bc1d73ca36064e999a06b30c015763bd2020-11-25T00:55:40ZengFrontiers Media S.A.Frontiers in Plant Science1664-462X2019-11-011010.3389/fpls.2019.01505489269How Does the Seed Pre-Germinative Metabolism Fight Against Imbibition Damage? Emerging Roles of Fatty Acid Cohort and Antioxidant DefenceEnrico Doria0Andrea Pagano1Carla Ferreri2Anna Vita Larocca3Anca Macovei4Susana de Sousa Araújo5Alma Balestrazzi6Department of Biology and Biotechnology “L. Spallanzani,”Pavia, ItalyDepartment of Biology and Biotechnology “L. Spallanzani,”Pavia, ItalyConsiglio Nazionale delle Ricerche, Research Area of Bologna, Bologna, ItalyLipinutragen srl, Laboratorio di Lipidomica, Bologna, ItalyDepartment of Biology and Biotechnology “L. Spallanzani,”Pavia, ItalyInstituto de Tecnologia Química e Biológica António Xavier, Universidade Nova de Lisboa (ITQB-NOVA), Oeiras, PortugalDepartment of Biology and Biotechnology “L. Spallanzani,”Pavia, ItalyDuring seed imbibition, lipids are engaged in membrane reorganization while facing free radical-mediated oxidative injury. In the present work, we explored changes in lipid components at different timepoints of imbibition (0.5, 2, 4, 6, and 8 h) in the legume Medicago truncatula, by combining biochemical approaches with targeted lipidomics and untargeted metabolomics. ROS and RNS (reactive oxygen and nitrogen species) accumulation was observed throughout the tested timepoints whereas lipid peroxidation increased at 4 h of imbibition. The seed response to oxidative damage was evidenced by a significant increase in tocopherols starting from 0.5 h of imbibition as well as by the reduction in total thiol content occurring at 2 h of imbibition. Since under physiological conditions, the proper functions of the cell membranes are strongly dependent on the qualitative and quantitative balance of fatty acid residues in phospholipids, the investigation was expanded to the fatty acid cohort of M. truncatula seeds. Total saturated fatty acids (SFAs), monounsaturated fatty acids (MUFAs), polyunsaturated fatty acids (PUFAs), omega(ω)-3 and omega(ω)-6 fatty acids showed fluctuations during seed imbibition. The most remarkable finding was the profile of the ω-3 PUFA docosopentaenoic acid (DPA, 7 cis, 10 cis, 13 cis, 16 cis, and 19 cis-22:5) that showed a peak (up to 1.0% of the total fatty acid content) at 0.5 and 8 h of imbibition, concomitant with the peaks observed in tocopherol levels. It is possible that the observed changes in DPA alter the physical properties of membranes, as reported in animal cells, triggering signaling pathways relevant for the cell defense against oxidative injury. Furthermore, the content and balance between tocopherols and PUFAs is regarded as a determinant of storage stability. No enhancement in trans-fatty acids occurred throughout imbibition, suggesting for a proper antioxidant response carried by the seed. Fatty acids profiles were integrated with data from untargeted metabolomics showing changes in lipid sub-pathways, among which fatty acid amide, lyso-phospholipids, and phospholipid metabolism. The emerging lipid profiles and dynamics are discussed in view of the overall imbibition damage generated during M. truncatula seed imbibition.https://www.frontiersin.org/article/10.3389/fpls.2019.01505/fullpre-germinative metabolismimbibition damagelipidomicsantioxidant responseMedicago truncatula |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Enrico Doria Andrea Pagano Carla Ferreri Anna Vita Larocca Anca Macovei Susana de Sousa Araújo Alma Balestrazzi |
spellingShingle |
Enrico Doria Andrea Pagano Carla Ferreri Anna Vita Larocca Anca Macovei Susana de Sousa Araújo Alma Balestrazzi How Does the Seed Pre-Germinative Metabolism Fight Against Imbibition Damage? Emerging Roles of Fatty Acid Cohort and Antioxidant Defence Frontiers in Plant Science pre-germinative metabolism imbibition damage lipidomics antioxidant response Medicago truncatula |
author_facet |
Enrico Doria Andrea Pagano Carla Ferreri Anna Vita Larocca Anca Macovei Susana de Sousa Araújo Alma Balestrazzi |
author_sort |
Enrico Doria |
title |
How Does the Seed Pre-Germinative Metabolism Fight Against Imbibition Damage? Emerging Roles of Fatty Acid Cohort and Antioxidant Defence |
title_short |
How Does the Seed Pre-Germinative Metabolism Fight Against Imbibition Damage? Emerging Roles of Fatty Acid Cohort and Antioxidant Defence |
title_full |
How Does the Seed Pre-Germinative Metabolism Fight Against Imbibition Damage? Emerging Roles of Fatty Acid Cohort and Antioxidant Defence |
title_fullStr |
How Does the Seed Pre-Germinative Metabolism Fight Against Imbibition Damage? Emerging Roles of Fatty Acid Cohort and Antioxidant Defence |
title_full_unstemmed |
How Does the Seed Pre-Germinative Metabolism Fight Against Imbibition Damage? Emerging Roles of Fatty Acid Cohort and Antioxidant Defence |
title_sort |
how does the seed pre-germinative metabolism fight against imbibition damage? emerging roles of fatty acid cohort and antioxidant defence |
publisher |
Frontiers Media S.A. |
series |
Frontiers in Plant Science |
issn |
1664-462X |
publishDate |
2019-11-01 |
description |
During seed imbibition, lipids are engaged in membrane reorganization while facing free radical-mediated oxidative injury. In the present work, we explored changes in lipid components at different timepoints of imbibition (0.5, 2, 4, 6, and 8 h) in the legume Medicago truncatula, by combining biochemical approaches with targeted lipidomics and untargeted metabolomics. ROS and RNS (reactive oxygen and nitrogen species) accumulation was observed throughout the tested timepoints whereas lipid peroxidation increased at 4 h of imbibition. The seed response to oxidative damage was evidenced by a significant increase in tocopherols starting from 0.5 h of imbibition as well as by the reduction in total thiol content occurring at 2 h of imbibition. Since under physiological conditions, the proper functions of the cell membranes are strongly dependent on the qualitative and quantitative balance of fatty acid residues in phospholipids, the investigation was expanded to the fatty acid cohort of M. truncatula seeds. Total saturated fatty acids (SFAs), monounsaturated fatty acids (MUFAs), polyunsaturated fatty acids (PUFAs), omega(ω)-3 and omega(ω)-6 fatty acids showed fluctuations during seed imbibition. The most remarkable finding was the profile of the ω-3 PUFA docosopentaenoic acid (DPA, 7 cis, 10 cis, 13 cis, 16 cis, and 19 cis-22:5) that showed a peak (up to 1.0% of the total fatty acid content) at 0.5 and 8 h of imbibition, concomitant with the peaks observed in tocopherol levels. It is possible that the observed changes in DPA alter the physical properties of membranes, as reported in animal cells, triggering signaling pathways relevant for the cell defense against oxidative injury. Furthermore, the content and balance between tocopherols and PUFAs is regarded as a determinant of storage stability. No enhancement in trans-fatty acids occurred throughout imbibition, suggesting for a proper antioxidant response carried by the seed. Fatty acids profiles were integrated with data from untargeted metabolomics showing changes in lipid sub-pathways, among which fatty acid amide, lyso-phospholipids, and phospholipid metabolism. The emerging lipid profiles and dynamics are discussed in view of the overall imbibition damage generated during M. truncatula seed imbibition. |
topic |
pre-germinative metabolism imbibition damage lipidomics antioxidant response Medicago truncatula |
url |
https://www.frontiersin.org/article/10.3389/fpls.2019.01505/full |
work_keys_str_mv |
AT enricodoria howdoestheseedpregerminativemetabolismfightagainstimbibitiondamageemergingrolesoffattyacidcohortandantioxidantdefence AT andreapagano howdoestheseedpregerminativemetabolismfightagainstimbibitiondamageemergingrolesoffattyacidcohortandantioxidantdefence AT carlaferreri howdoestheseedpregerminativemetabolismfightagainstimbibitiondamageemergingrolesoffattyacidcohortandantioxidantdefence AT annavitalarocca howdoestheseedpregerminativemetabolismfightagainstimbibitiondamageemergingrolesoffattyacidcohortandantioxidantdefence AT ancamacovei howdoestheseedpregerminativemetabolismfightagainstimbibitiondamageemergingrolesoffattyacidcohortandantioxidantdefence AT susanadesousaaraujo howdoestheseedpregerminativemetabolismfightagainstimbibitiondamageemergingrolesoffattyacidcohortandantioxidantdefence AT almabalestrazzi howdoestheseedpregerminativemetabolismfightagainstimbibitiondamageemergingrolesoffattyacidcohortandantioxidantdefence |
_version_ |
1725229967818620928 |