4.7 Article

Melatonin mitigates cadmium and aluminium toxicity through modulation of antioxidant potential inBrassica napusL

Journal

PLANT BIOLOGY
Volume 22, Issue 4, Pages 679-690

Publisher

WILEY
DOI: 10.1111/plb.13093

Keywords

Brassica napus; melatonin; cell wall; vacuole; cadmium; aluminium; resistance

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Melatonin has emerged as an essential molecule in plants, due to its role in defence against metal toxicity. Aluminium (Al) and cadmium (Cd) toxicity inhibit rapeseed seedling growth. In this study, we applied different doses of melatonin (50 and 100 mu m) to alleviate Al (25 mu m) and Cd (25 mu m) stress in rapeseed seedlings. Results show that Al and Cd caused toxicity in rapeseed seedling, as evidenced by a decrease in height, biomass and antioxidant enzyme activity. Melatonin increased the expression of melatonin biosynthesis-relatedBrassica napusgenes for caffeic acid O-methyl transferase (BnCOMT) under Al and Cd stress. The genesBnCOMT-1,BnCOMT-5andBnCOMT-8showed up-regulated expression, whileBnCOMT-4andBnCOMT-6were down-regulated during incubation in water. Melatonin application increased the germination rate, shoot length, root length, fresh and dry weight of seedlings. Melatonin supplementation under Al and Cd stress increased superoxide dismutase, catalase, peroxidase, ascorbate peroxidase, proline, chlorophyll and anthocyanin content, as well as photosynthesis rate. Both Cd and Al treatments significantly increased hydrogen peroxide and malondialdehyde levels in rapeseed seedlings, which were strictly counterbalanced by melatonin. Analysis of Cd and Al in different subcellular compartments showed that melatonin enhanced cell wall and soluble fractions, but reduced the vacuolar and organelle fractions in Al- and Cd-treated seedlings. These results suggest that melatonin-induced improvements in antioxidant potential, biomass, photosynthesis rate and successive Cd and Al sequestration play a pivotal role in plant tolerance to Al and Cd stress. This mechanism may have potential implications in safe food production.

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