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  5. Aging-Induced Reduction in Safflower Seed Germination via Impaired Energy Metabolism and Genetic Integrity Is Partially Restored by Sucrose and DA-6 Treatment.

Aging-Induced Reduction in Safflower Seed Germination via Impaired Energy Metabolism and Genetic Integrity Is Partially Restored by Sucrose and DA-6 Treatment.

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Resource type
Journal article
Creator (person)
Lv, Tang
Li, Juan
Zhou, Lanyu
Zhou, Tao
Pritchard, Hugh W.
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Date published
February 27, 2024
Abstract

Seed storage underpins global agriculture and the seed trade and revealing the mechanisms of seed aging is essential for enhancing seed longevity management. Safflower is a multipurpose oil crop, rich in unsaturated fatty acids that are at high risk of peroxidation as a contributory factor to seed aging. However, the molecular mechanisms responsible for safflower seed viability loss are not yet elucidated. We used controlled deterioration (CDT) conditions of 60% relative humidity and 50 °C to reduce germination in freshly harvested safflower seeds and analyzed aged seeds using biochemical and molecular techniques. While seed malondialdehyde (MDA) and fatty acid content increased significantly during CDT, catalase activity and soluble sugar content decreased. KEGG analysis of gene function and qPCR validation indicated that aging severely impaired several key functional and biosynthetic pathways including glycolysis, fatty acid metabolism, antioxidant activity, and DNA replication and repair. Furthermore, exogenous sucrose and diethyl aminoethyl hexanoate (DA-6) treatment partially promoted germination in aged seeds, further demonstrating the vital role of impaired sugar and fatty acid metabolism during the aging and recovery processes. We concluded that energy metabolism and genetic integrity are impaired during aging, which contributes to the loss of seed vigor. Such energy metabolic pathways as glycolysis, fatty acid degradation, and the tricarboxylic acid cycle (TCA) are impaired, especially fatty acids produced by the hydrolysis of triacylglycerols during aging, as they are not efficiently converted to sucrose via the glyoxylate cycle to provide energy supply for safflower seed germination and seedling growth. At the same time, the reduced capacity for nucleotide synthesis capacity and the deterioration of DNA repair ability further aggravate the damage to DNA, reducing seed vitality.

Organisational unit
Science
Project(s)
Priority 2: Trait Diversity and Function
Funder
Funder nameISNIAwards
National Natural Science Foundation of China, China
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82274043 - U19A2010
Science and Technology Department of Sichuan Province< China
2019YJ0333 - 2021YFYZ0012-5
National Administration of Traditional Chinese Medicine, China
Innovation Team and Talents Cultivation Program, ZYYCXTD-D-202209
Journal title
Plants
Volume
13
Issue
5
Article number
659
Publisher
MDPI AG
Place of publication
Basel, Switzerland
eISSN
2223-7747
Date accepted
February 25, 2024
Official URL
https://doi.org/10.3390/plants13050659
Related URL
https://www.mdpi.com/2223-7747/13/5/659
Rights statement
In Copyright
Licence
CC BY 4.0
DOI
10.3390/plants13050659
Keywords
Sucrose
DA-6
Controlled deterioration treatment (CDT)
Carthamus tinctorius
Seed aging
Seed germination recovery
Differentially expressed genes
Additional information
IF = 4.658 (2022-2023)
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