AMELIORATION OF CADMIUM TOXICITY BY EXOGENOUSLY APPLIED SALICYLIC ACID IN TWO CONTRASTING BARLEY GENOTYPES
Main Article Content
Keywords
Abstract
The mitigating role of salicylic acid in growth, yield and various yield parameters in barley (Hordeum vulgare), genotypes viz., Jau-83 and Jau-87 under cadmium induced stress was studied. The pot study was carried out in the wire house, University of Sargodha, Lyallpur Campus, Faisalabad. Two (0 and 500 µM) levels of Cd metal and three (0.1, 0.5 0.9 mM) levels of salicylic acid alone and in combinations were applied directly in river sand medium. The experiment was designed as Completely Randomized (CRD), with factorial arrangement. Results revealed a marked reduction in shoot and root length, fresh and dry biomass, number of leaves and total leaf area and shoot root ratio under cadmium stress and increased with salicylic acid, but all the three level of SA behaved differently. Maximum increase in growth parameters were noted at 0.5 mM SA compared to 0.1 and 0.9 mM in both the barley genotypes. Although both genotypes statistically behaved similarly, Jau-83 behaved better than Jau-87. The results of yield provided drastic effect of Cd metal on all the recorded yield and yield parameters. The addition of salicylic acid alone in the irrigation medium increased the yield parameters. The results noted about the mitigating effect of salicylic acid under Cd stress exhibited an increase in yield parameters but the increase was less at low and high level of SA than 0.5 mM. SA suppressed the effect of cadmium induced stress and showed increase in growth and yield and yield parameters when applied exogenously through rooting. Results showed presence of SA in the irrigation medium containing cadmium metal mitigated the toxic effect of cadmium.
References
2. Soni, S., A.B. Jha, R.S. Dubey and P. Sharma. 2023. Mitigating cadmium accumulation and toxicity in plants: The promising role of nanoparticles. Science of the Total Environment. 912: 168826.
3. Suhani, I., S. Sahab, V. Srivastava and R.P. Singh. 2021. Impact of cadmium pollution on food safety and human health. Current Opinion in Toxicology. 27: 1-7
4. Haider, F.U., C. Liqun, J.A. Coulter, S.A. Cheema, J. Wu, R. Zhang, M. Wenjun and M. Farooq. 2021. Cadmium toxicity in plants: Impacts and remediation strategies. Ecotoxicology and Environmental Safety. 211: 111887.
5. Soni, S., A.B. Jha, R.S. Dubey and P. Sharma. 2024. Mitigating cadmium accumulation and toxicity in plants: The promising tole of nanoparticles. Science of the Total Environment. 912: 168826
6. Kaleem, M., F. Shabir, I. Hussain, M. Hameed, M.S.A. Ahmad, A. Mehmood, W. Ashfaq, S. Riaz, Z. Afzaal, M.F. Maqsood, U. Iqbal, S.M.R. Shah, M. Irshad. 2022. Alleviation of cadmium toxicity in Zea mays L. through up-regulation of growth, antioxidant defense system and organic osmolytes under calcium supplementation. PLoS One. 17(6): e0269162.
7. Guo. H., M. Deng, F. Yu. H. Li, Z. Cao, Q. Zeng, Z. Chen, H. Luo and B. Tang. 2023. Phenotypic and proteomic insights into differential cadmium accumulation in maize kernels. Genes (Basel): 14(12): 2204.
8. Jadid, N., I. Puspaningtyas, A.L. Jannah, C.E. Safitri, V.H.D. Hutahuruk. 2022. Growth responses of Indonesian Foxtail millet (Setaria italica (L.) Beauv.) to cadmium stress. Air, Soil and Water Research. 2022; 15.
9. Liu, J., D. Zhang, Y. Yuan, P. Chen, P. Zhang, F. Jin, Q. Yang, B. Feng. 2021. A promising crop for cadmium-contamination remediation: Broomcorn millet. Ecotoxicology and Environmental Safety. 224: 112669.
10. Zhang, D., H. Zhou, L. Shao, H. Wang, Y. Zhang, T. Zhu. L. Ma, Q. Ding, L. Ma. 2022. Root characteristics critical for cadmium tolerance and reduced accumulation in wheat (Triticum aestivum L.). Journal of Environmental Management. 305: 114365.
11. Cai, Y., S. Zhang, K. Cai, F. Huang, B. Pan, W. Wang. 2020. Cd accumulation, biomass and yield of rice are varied with silicon application at different growth phases under high concentration cadmium-contaminated soil. Chemosphere. 242: 125128.
12. An. T., Q. Kuang, Y. Wu, Y, Gao, Y. Zhang, B.S. Mickan, B. Xu, S. Zhang, X. Deng, M. Yu and Y. Chen. 2023. Variability in cadmium stress tolerance among four maize genotypes: impacts on plant physiology, root morphology and chloroplast microstructure. Plant Physiology and Biochemistry. 205: 108135.
13. Deng, S., Y. Wu, Q. Zeng, A. Zhang, M. Duan and M. Deng. 2024. Effects of cd stress on morphological and physiological characteristics of maize seedlings. Agronomy. 14(2): 379.
14. Luo. S., K. Wang, Z. Li, H. Li, J. Shao and X. Zhu. 2022. Salicylic acid enhances cadmium tolerance and reduces its shoot accumulation in Fagopyrum tataricum seedlings by promoting root cadmium retention and mitigating oxidative stress. International Journal of Molecular Science. 23(23): 14746.
15. Wang, F., H. Tan, L. Huang, C. Cai, Y. Ding, H. Bao, Z. Chen and C. Zhu. 2021. Application of exogenous salicylic acid reduces Cd toxicity and Cd accumulation in rice. Ecotoxicology and Environmental Safety. 207: 111198.
16. Raza, S.H., F. Shafiq and S. Anwar. 2022. The influence of salicylic acid foliar spray on growth, biochemical traits, and Cd-uptake in radish (Raphanus sativus L.). Pak J Bot. 54(5): 1707-1713.
17. Moustakas, M., I. Sperdouli, I-D. S. Adamakis, J. Moustaka, S, Isgoren and B. Sas. 2022. Harnessing the role of foliar applied salicylic acid in decreasing chlorophyll content to reassesses photosystem II photprotection in crop plants. Int J Mol Sci. 23(13): 7038.
18. Bagautdinova, Z.Z., N. Omelyanchuk, A.V. Tyapkin, V.V. Kovirzhnykh, V.V. Lavrekha and E.V. Zemlyanskaya. 2022. Salicylic acid in root growth and development. Int. J Mol Sci., 23(4): 2228.
19. Altaf, M.A., R. Shahid, P. Lal, R. Ahmad, F. Zulfiqar, A. Kumar, F. Hayat, R. Kumar, M.K. Lal, S. Naz and R.K. Tiwari. 2023. Current understanding of boosting power of salicylic acid for abiotic stress tolerance in horticultural crops. South Afri J Bot. 163: 285-293.
20. Blattner, F.R. 2018. Taxonomy of the genus Hordeum and Barley (Hordeum vulgare). In: “The barley genome’. Pp. 11-23.
21. Kepova-D., K., L. S-Stoilova, Z.P. Stoyanova and U. Feller. 2006. Cadmium stress in barley: growth, leaf pigment and protein composition and detoxification of reactive oxygen species. 29(3): 451-468.