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Exogenous Allantoin Confers Rapeseed () Tolerance to Simulated Drought by Improving Antioxidant Metabolism and Physiology

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Date 2023 Aug 26
PMID 37627503
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Abstract

Allantoin is an emerging plant metabolite, but its role in conferring drought-induced oxidative stress is still elusive. Therefore, an experiment was devised to explore the role of allantoin (0.5 and 1.0 mM; foliar spray) in rapeseed ( cv. BARI Sarisha-17) under drought. Seedlings at fifteen days of age were subjected to drought, maintaining soil moisture levels at 50% and 25% field capacities, while well-irrigated plants served as the control group. Drought-stressed plants exhibited increased levels of lipid peroxidation and hydrogen peroxide, electrolyte leakage, and impaired glyoxalase systems. Thus, the growth, biomass, and yield attributes of rapeseed were significantly impaired under drought. However, the allantoin-supplemented plants showed a notable increase in their contents of ascorbate and glutathione and decreased dehydroascorbate and glutathione disulfide contents under drought. Moreover, the activity of antioxidant enzymes such as ascorbate peroxidase, dehydroascorbate reductase, glutathione reductase, glutathione peroxidase, and catalase were accelerated with the allantoin spray and the glyoxalase system was also enhanced under drought. Moreover, the improvement in water balance with reduction in proline and potassium ion contents was also observed when allantoin was applied to the plants. Overall, the beneficial effects of allantoin supplementation resulted in the improved plant growth, biomass, and yield of rapeseed under drought conditions. These findings suggest that allantoin acts as an efficient metabolite in mitigating the oxidative stress caused by reactive oxygen species by enhancing antioxidant defense mechanisms and the glyoxalase system.

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References
1.
Takagi H, Ishiga Y, Watanabe S, Konishi T, Egusa M, Akiyoshi N . Allantoin, a stress-related purine metabolite, can activate jasmonate signaling in a MYC2-regulated and abscisic acid-dependent manner. J Exp Bot. 2016; 67(8):2519-2532. PMC: 4809300. DOI: 10.1093/jxb/erw071. View

2.
Oliver M, Guo L, Alexander D, Ryals J, Wone B, Cushman J . A sister group contrast using untargeted global metabolomic analysis delineates the biochemical regulation underlying desiccation tolerance in Sporobolus stapfianus. Plant Cell. 2011; 23(4):1231-48. PMC: 3101564. DOI: 10.1105/tpc.110.082800. View

3.
Gowtham H, Singh S, Shilpa N, Aiyaz M, Nataraj K, Udayashankar A . Insight into Recent Progress and Perspectives in Improvement of Antioxidant Machinery upon PGPR Augmentation in Plants under Drought Stress: A Review. Antioxidants (Basel). 2022; 11(9). PMC: 9495777. DOI: 10.3390/antiox11091763. View

4.
Liu Q, Dong G, Ma Y, Zhao S, Liu X, Li X . Rice Glycosyltransferase Gene Is Involved in Drought Stress Tolerance Through Enhancing Abscisic Acid Response. Front Plant Sci. 2022; 12:790195. PMC: 8733621. DOI: 10.3389/fpls.2021.790195. View

5.
Wang P, Kong C, Sun B, Xu X . Distribution and function of allantoin (5-ureidohydantoin) in rice grains. J Agric Food Chem. 2012; 60(11):2793-8. DOI: 10.1021/jf2051043. View