Effects of
hormopriming and pretreatment with gibberellic acid on fenugreek (Trigonella foenum graecum L.) seed
germination
-
Published:2024-03-12
Issue:2
Volume:83
Page:
-
ISSN:1847-8476
-
Container-title:Acta botanica Croatica
-
language:
-
Short-container-title:Acta bot. Croat. (Online)
Author:
Gueridi Sabrina1, Boucelha Lilya1, Abrous-Belbachir Ouzna1, Djebbar Réda1
Affiliation:
1. University of Sciences and Technology Houari Boumediene (USTHB), Faculty of Biological Sciences, Laboratory of Biology and Physiology of Organisms, BP 32, El Alia, Bab Ezzouar, 16111 Algiers, Algeria.
Abstract
Various approaches are used to improve crop production. Seed priming is one of the simplest and least expensive methods currently used to ensure rapid and uniform yields. Our study highlights the role of priming and imbibition in improving seed germination. The objective of this study was to investigate the effect of seed imbibition and hormopriming with 0.1 mM gibberellic acid (GA3) on germination performance and biochemical changes in fenugreek (Trigonella foenum-graecum L.) radicles. The results showed that hydropriming and imbibition with GA3 significantly improved germination performance and radicle growth. Concurrently, treatments induced stimulation of the antioxidant activities of superoxide dismutase, ascorbic peroxidase, catalase and guaiacol peroxidase, and decreased lipid peroxidation, stimulated an increase in total non-enzymatic antioxidant capacity and reduced glutathione content. Accumulation of hydrogen peroxide and cytochemical analysis of reactive oxygen species (ROS) in situ confirmed the role of imbibition in stimulating ROS. Interestingly the effects of imbibition with gibberellic acid were more effective then hormopriming, probably due to the partial degradation of GA3 during dehydration process.
Publisher
University of Zagreb, Faculty of Science, Department of Biology
Reference58 articles.
1. Maya-Ampudia, V., Bernal-Lugo, I., 2006: Redox‑sensitive target detection in gibberellic acid‑induced barley aleurone layer. Free Radical Biology and Medicine 40, 1362-1368. https://doi.org/10.1016/j.freeradbiomed.2005.12.004. 2. Moron, M. S., Depierre, J. W., Mannervik, B., 1979: Levels of glutathione, glutathione reductase and glutathione S-transferase activities in rat lung and liver. Biochimica et Biophysica Acta (BBA)-general subjects 582(1), 67–78. https://doi.org/10.1016/0304-4165(79)90289-7 3. Mirheidari, F., Hatami, M., Ghorbanpour, M., 2022: Effect of different concentrations of IAA, GA3 and chitosan nano-fiber on physio-morphological characteristics and metabolite contents in roselle (Hibiscus sabdariffa L.). South African Journal of Botany 145, 323–333. https://doi.org/10.1016/j.sajb.2021.07.021 4. Melzi Ou Mezzi, C., Boucelha, L., Abrous-Belbachir, O., Djebbar, R., 2021: Effects of hydropriming and chemical pretreatments of Trigonella foenum-greacum (L.) seeds on germination, antioxidant activities and growth. Analele Universităţii din Oradea, Fascicula Biologie 28(2), 165-175. 5. McDonald, M. B., 1999. Seed deterioration: Physiology, repair and assessment. Seed Science and Technology 27, 177–237.
|
|