Plant Oxidative Stress: Biology, Physiology and Mitigation
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References
- Hasanuzzaman, M.; Bhuyan, M.H.M.B.; Anee, T.I.; Parvin, K.; Nahar, K.; Mahmud, J.A.; Fujita, M. Regulation of ascorbate-glutathione pathway in mitigating oxidative damage in plants under abiotic stress. Antioxidants 2019, 8, 384. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Hasanuzzaman, M.; Bhuyan, M.H.M.B.; Zulfiqar, F.; Raza, A.; Mohsin, S.M.; Mahmud, J.A.; Fujita, M.; Fotopoulos, V. Reactive oxygen species and antioxidant defense in plants under abiotic stress: Revisiting the crucial role of a universal defense regulator. Antioxidants 2020, 9, 681. [Google Scholar] [CrossRef] [PubMed]
- Hasanuzzaman, M.; Raihan, M.R.H.; Masud, A.A.C.; Rahman, K.; Nowroz, F.; Rahman, M.; Nahar, K.; Fujita, M. Regulation of reactive oxygen species and antioxidant defense in plants under salinity. Int. J. Mol. Sci. 2021, 22, 9326. [Google Scholar] [CrossRef] [PubMed]
- Miller, G.; Suzuki, N.; Ciftci-Yilmaz, S.; Mittler, R. Reactive oxygen species homeostasis and signaling during drought and salinity stresses. Plant Cell Environ. 2010, 33, 453–467. [Google Scholar] [CrossRef] [PubMed]
- Billah, M.; Aktar, S.; Brestic, M.; Zivcak, M.; Khaldun, A.B.M.; Uddin, M.S.; Bagum, S.A.; Yang, X.; Skalicky, M.; Mehari, T.G.; et al. Progressive genomic approaches to explore drought- and salt-induced oxidative stress responses in plants under changing climate. Plants 2021, 10, 1910. [Google Scholar] [CrossRef] [PubMed]
- Seleiman, M.F.; Semida, W.M.; Rady, M.M.; Mohamed, G.F.; Hemida, K.A.; Alhammad, B.A.; Hassan, M.M.; Shami, A. Sequential application of antioxidants rectifies ion imbalance and strengthens antioxidant systems in salt-stressed cucumber. Plants 2020, 9, 1783. [Google Scholar] [CrossRef] [PubMed]
- Hashim, A.M.; Alharbi, B.M.; Abdulmajeed, A.M.; Elkelish, A.; Hozzein, W.N.; Hassan, H.M. Oxidative stress responses of some endemic plants to high altitudes by intensifying antioxidants and secondary metabolites content. Plants 2020, 9, 869. [Google Scholar] [CrossRef] [PubMed]
- Costa, S.F.; Martins, D.; Agacka-Mołdoch, M.; Czubacka, A.; de Sousa Araújo, S. Strategies to alleviate salinity stress in plants. In Salinity Responses and Tolerance in Plants; Volume 1: Targeting Sensory, Transport and Signaling Mechanisms; Kumar, V., Wani, S.H., Suprasanna, P., Tran, L.-S.P., Eds.; Springer: Cham, Switzerland, 2018; pp. 307–337. [Google Scholar]
- Del Pino, A.M.; Regni, L.; D’Amato, R.; Di Michele, A.; Proietti, P.; Palmerini, C.A. Persistence of the effects of Se-fertilization in olive trees over time, monitored with the cytosolic Ca2+ and with the germination of pollen. Plants 2021, 10, 2290. [Google Scholar] [CrossRef] [PubMed]
- Hasanuzzaman, M.; Bhuyan, M.B.; Raza, A.; Hawrylak-Nowak, B.; Matraszek-Gawron, R.; Al Mahmud, J.; Nahar, K.; Fujita, M. Selenium in plants: Boon or bane? Environ. Exp. Bot. 2020, 178, 104170. [Google Scholar] [CrossRef]
- Rahman, M.; Rahman, K.; Sathi, K.S.; Alam, M.M.; Nahar, K.; Fujita, M.; Hasanuzzaman, M. Supplemental selenium and boron mitigate salt-induced oxidative damages in Glycine max L. Plants 2021, 10, 2224. [Google Scholar] [CrossRef] [PubMed]
- Al-harthi, M.M.; Bafeel, S.O.; El-Zohri, M. Gibberellic acid and jasmonic acid improve salt tolerance in summer squash by modulating some physiological parameters symptomatic for oxidative stress and mineral nutrition. Plants 2021, 10, 2768. [Google Scholar] [CrossRef] [PubMed]
- Moustafa-Farag, M.; Mohamed, H.I.; Mahmoud, A.; Elkelish, A.; Misra, A.N.; Guy, K.M.; Kamran, M.; Ai, S.; Zhang, M. Salicylic acid stimulates antioxidant defense and osmolyte metabolism to alleviate oxidative stress in watermelons under excess boron. Plants 2020, 9, 724. [Google Scholar] [CrossRef] [PubMed]
- Mohi-Ud-Din, M.; Talukder, D.; Rohman, M.; Ahmed, J.U.; Jagadish, S.V.K.; Islam, T.; Hasanuzzaman, M. Exogenous application of methyl jasmonate and salicylic acid mitigates drought-induced oxidative damages in french bean (Phaseolus vulgaris L.). Plants 2021, 10, 2066. [Google Scholar] [CrossRef] [PubMed]
- Naqve, M.; Wang, X.; Shahbaz, M.; Fiaz, S.; Naqvi, W.; Naseer, M.; Mahmood, A.; Ali, H. Foliar spray of alpha-tocopherol modulates antioxidant potential of okra fruit under salt stress. Plants 2021, 10, 1382. [Google Scholar] [CrossRef] [PubMed]
- Tao, M.-Q.; Jahan, M.S.; Hou, K.; Shu, S.; Wang, Y.; Sun, J.; Guo, S.-R. Bitter melon (Momordica charantia L.) rootstock improves the heat tolerance of cucumber by regulating photosynthetic and antioxidant defense pathways. Plants 2020, 9, 692. [Google Scholar] [CrossRef] [PubMed]
- Soad, M.M.; Lobna, S.T.; Farahat, M.M. Influence of foliar application of pepton on growth, flowering and chemical composition of Helichrysum bracteatum L. plants under different irrigation intervals. Ozean J. Appl. Sci. 2010, 3, 143–155. [Google Scholar]
- Emanuil, N.; Akram, M.S.; Ali, S.; El-Esawi, M.A.; Iqbal, M.; Alyemeni, M.N. Peptone-induced physio-biochemical modulations reduce cadmium toxicity and accumulation in spinach (Spinacia oleracea L.). Plants 2020, 9, 1806. [Google Scholar] [CrossRef]
- Do Espirito Santo Pereira, A.; Oliveira, H.C.; Fraceto, L.F.; Santaella, C. Nanotechnology potential in seed priming for sustainable agriculture. Nanomaterials 2021, 11, 267. [Google Scholar] [CrossRef]
- Yan, A.; Chen, Z. Detection methods of nanoparticles in plant tissues. In New Visions in Plant Science; Çelik, Ö., Ed.; IntechOpen: London, UK, 2018; pp. 99–119. [Google Scholar] [CrossRef] [Green Version]
- Mittal, D.; Kaur, G.; Singh, P.; Yadav, K.; Ali, S.A. Nanoparticle-based sustainable agriculture and food science: Recent advances and future outlook. Front. Nanotechnol. 2020, 2, 10. [Google Scholar] [CrossRef]
- Ahmad, P.; Alyemeni, M.N.; Al-Huqail, A.A.; Alqahtani, M.A.; Wijaya, L.; Ashraf, M.; Kaya, C.; Bajguz, A. Zinc oxide nanoparticles application alleviates arsenic (As) toxicity in soybean plants by restricting the uptake of as and modulating key biochemical attributes, antioxidant enzymes, ascorbate-glutathione cycle and glyoxalase system. Plants 2020, 9, 825. [Google Scholar] [CrossRef]
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Hasanuzzaman, M.; Fujita, M. Plant Oxidative Stress: Biology, Physiology and Mitigation. Plants 2022, 11, 1185. https://doi.org/10.3390/plants11091185
Hasanuzzaman M, Fujita M. Plant Oxidative Stress: Biology, Physiology and Mitigation. Plants. 2022; 11(9):1185. https://doi.org/10.3390/plants11091185
Chicago/Turabian StyleHasanuzzaman, Mirza, and Masayuki Fujita. 2022. "Plant Oxidative Stress: Biology, Physiology and Mitigation" Plants 11, no. 9: 1185. https://doi.org/10.3390/plants11091185
APA StyleHasanuzzaman, M., & Fujita, M. (2022). Plant Oxidative Stress: Biology, Physiology and Mitigation. Plants, 11(9), 1185. https://doi.org/10.3390/plants11091185