Effects of 24-Epibrassinolide, melatonin and their combined effect on cadmium tolerance in Primula forbesii Franch.
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Qinglin Liu | Yuanzhi Pan | Jian Zhao | Beibei Jiang | Yin Jia | Yifeng Li | Xiancai Yin | Zhuolin Li
[1] Qinglin Liu,et al. PscCYP716A1-Mediated Brassinolide Biosynthesis Increases Cadmium Tolerance and Enrichment in Poplar , 2022, Frontiers in Plant Science.
[2] Yi Han,et al. Melatonin Confers Plant Cadmium Tolerance: An Update , 2021, International journal of molecular sciences.
[3] In-Jung Lee,et al. Melatonin Enhances the Tolerance and Recovery Mechanisms in Brassica juncea (L.) Czern. Under Saline Conditions , 2021, Frontiers in Plant Science.
[4] Lingfeng Huang,et al. Cadmium accumulation, subcellular distribution and chemical fractionation in hydroponically grown Sesuvium portulacastrum [Aizoaceae] , 2020, PloS one.
[5] P. Ahmad,et al. Foliar Application of 24-Epibrassinolide Improves Growth, Ascorbate-Glutathione Cycle, and Glyoxalase System in Brown Mustard (Brassica juncea (L.) Czern.) under Cadmium Toxicity , 2020, Plants.
[6] K. Nahar,et al. Regulation of ROS Metabolism in Plants under Environmental Stress: A Review of Recent Experimental Evidence , 2020, International journal of molecular sciences.
[7] P. Zoufan,et al. Alleviation of cadmium-induced phytotoxicity and growth improvement by exogenous melatonin pretreatment in mallow (Malva parviflora) plants. , 2020, Ecotoxicology and environmental safety.
[8] B. R. S. Silva,et al. 24-epibrassinolide induces protection against waterlogging and alleviates impacts on the root structures, photosynthetic machinery and biomass in soybean , 2020, Plant signaling & behavior.
[9] B. Batista,et al. Leaf application of 24-epibrassinolide mitigates cadmium toxicity in young Eucalyptus urophylla plants by modulating leaf anatomy and gas exchange. , 2020, Physiologia plantarum.
[10] Lixin Zhang,et al. Acetylcholine ameliorates the adverse effects of cadmium stress through mediating growth, photosynthetic activity and subcellular distribution of cadmium in tobacco (Nicotiana benthamiana). , 2020, Ecotoxicology and environmental safety.
[11] Liwang Liu,et al. Melatonin confers cadmium tolerance by modulating critical heavy metal chelators and transporters in radish plants , 2020, Journal of pineal research.
[12] Yanlong Dong,et al. Analysis of 2,4-epibrassinolide created an enhancement tolerance on Cd toxicity in Solanum nigrum L. , 2020, Environmental Science and Pollution Research.
[13] Udson de Oliveira Barros Junior,et al. 24-Epibrassinolide mitigates nickel toxicity in young Eucalyptus urophylla S.T. Blake plants: nutritional, physiological, biochemical, anatomical and morphological responses , 2020, Annals of Forest Science.
[14] M. B. Arnao,et al. Is Phytomelatonin a New Plant Hormone? , 2020, Agronomy.
[15] S. Farouk,et al. Ameliorative roles of melatonin and/or zeolite on chromium-induced leaf senescence in marjoram plants by activating antioxidant defense, osmolyte accumulation, and ultrastructural modification , 2019 .
[16] Trevor M. Nolan,et al. Brassinosteroids: Multidimensional Regulators of Plant Growth, Development, and Stress Responses[OPEN] , 2019, Plant Cell.
[17] P. Ahmad,et al. 24-Epibrassinolide (EBR) Confers Tolerance against NaCl Stress in Soybean Plants by Up-Regulating Antioxidant System, Ascorbate-Glutathione Cycle, and Glyoxalase System , 2019, Biomolecules.
[18] K. Nahar,et al. Regulation of Ascorbate-Glutathione Pathway in Mitigating Oxidative Damage in Plants under Abiotic Stress , 2019, Antioxidants.
[19] A. Faraz,et al. Supplementation of Salicylic Acid and Citric Acid for Alleviation of Cadmium Toxicity to Brassica juncea , 2019, Journal of Plant Growth Regulation.
[20] S. Farouk,et al. Exogenous melatonin-mediated modulation of arsenic tolerance with improved accretion of secondary metabolite production, activating antioxidant capacity and improved chloroplast ultrastructure in rosemary herb. , 2019, Ecotoxicology and environmental safety.
[21] Meng Wang,et al. Foliar spraying of melatonin confers cadmium tolerance in Nicotiana tabacum L. , 2019, Ecotoxicology and environmental safety.
[22] N. Zhang,et al. Melatonin Alleviates Copper Toxicity via Improving Copper Sequestration and ROS Scavenging in Cucumber , 2018, Plant & cell physiology.
[23] Ping Wang,et al. Effect of Cd on growth, physiological response, Cd subcellular distribution and chemical forms of Koelreuteria paniculata. , 2018, Ecotoxicology and environmental safety.
[24] Jiangfei Meng,et al. Exogenous 24-Epibrassinolide alleviates oxidative damage from copper stress in grape (Vitis vinifera L.) cuttings. , 2018, Plant physiology and biochemistry : PPB.
[25] K. Siddique,et al. Interactive effect of 24-epibrassinolide and silicon alleviates cadmium stress via the modulation of antioxidant defense and glyoxalase systems and macronutrient content in Pisum sativum L. seedlings , 2018, BMC plant biology.
[26] Xiao-Xi Qin,et al. Influence of selenium on root morphology and photosynthetic characteristics of winter wheat under cadmium stress , 2018, Environmental and Experimental Botany.
[27] Lifang Wu,et al. Exogenous Melatonin Confers Cadmium Tolerance by Counterbalancing the Hydrogen Peroxide Homeostasis in Wheat Seedlings , 2018, Molecules.
[28] I. Tahir,et al. Efficacy of 24-epibrassinolide in improving the nitrogen metabolism and antioxidant system in chickpea cultivars under cadmium and/or NaCl stress , 2017 .
[29] Xiaoe Yang,et al. Morphological and Physiological Responses of Plants to Cadmium Toxicity: A Review , 2017 .
[30] K. Nahar,et al. Glutathione in plants: biosynthesis and physiological role in environmental stress tolerance , 2017, Physiology and Molecular Biology of Plants.
[31] M. Hasan,et al. Melatonin mitigates cadmium phytotoxicity through modulation of phytochelatins biosynthesis, vacuolar sequestration, and antioxidant potential in Solanum lycopersicum L , 2015, Front. Plant Sci..
[32] Jitender Singh,et al. Redox homeostasis via gene families of ascorbate-glutathione pathway , 2015, Front. Environ. Sci..
[33] Yanhua Wang,et al. Joint toxicity of chlorpyrifos, atrazine, and cadmium at lethal concentrations to the earthworm Eisenia fetida , 2015, Environmental Science and Pollution Research.
[34] A. Bajguz,et al. Interactive effect of brassinosteroids and cytokinins on growth, chlorophyll, monosaccharide and protein content in the green alga Chlorella vulgaris (Trebouxiophyceae). , 2014, Plant physiology and biochemistry : PPB.
[35] Lingxia Sun,et al. Collection and evaluation of Primula species of western Sichuan in China , 2014, Genetic Resources and Crop Evolution.
[36] R. Khalil,et al. 24-Epibrassinolide regulates photosynthesis, antioxidant enzyme activities and proline content of Cucumis sativus under salt and/or copper stress , 2013, Environmental Monitoring and Assessment.
[37] Guo-ping Zhang,et al. Genotypic differences in physiological characteristics in the tolerance to drought and salinity combined stress between Tibetan wild and cultivated barley. , 2013, Plant physiology and biochemistry : PPB.
[38] Gang Liu,et al. Dissimilarity of ascorbate–glutathione (AsA–GSH) cycle mechanism in two rice (Oryza sativa L.) cultivars under experimental free-air ozone exposure , 2013 .
[39] Y. Gerchman,et al. Melatonin as an antioxidant and its semi-lunar rhythm in green macroalga Ulva sp. , 2011, Journal of experimental botany.
[40] Lizhe An,et al. Involvement of brassinosteroid signals in the floral-induction network of Arabidopsis. , 2010, Journal of experimental botany.
[41] P. Ahmad. Growth and antioxidant responses in mustard (Brassica juncea L.) plants subjected to combined effect of gibberellic acid and salinity , 2010 .
[42] P. Kopittke,et al. Trace metal phytotoxicity in solution culture: a review. , 2010, Journal of experimental botany.
[43] Uday K. Divi,et al. Brassinosteroid: a biotechnological target for enhancing crop yield and stress tolerance. , 2009, New biotechnology.
[44] Jingquan Yu,et al. A role for brassinosteroids in the regulation of photosynthesis in Cucumis sativus. , 2004, Journal of experimental botany.
[45] K. Shah,et al. Effect of cadmium on lipid peroxidation, superoxide anion generation and activities of antioxidant enzymes in growing rice seedlings , 2001 .
[46] B. Halliwell,et al. Glutathione and ascorbic acid in spinach (Spinacia oleracea) chloroplasts. The effect of hydrogen peroxide and of Paraquat. , 1983, The Biochemical journal.
[47] J. Yopp,et al. Brassinolide, a growth promoting steroidal lactone. II. Activity in selected gibberellin and cytokinin bioassays , 1981 .
[48] E. Elstner,et al. Inhibition of nitrite formation from hydroxylammoniumchloride: a simple assay for superoxide dismutase. , 1976, Analytical biochemistry.
[49] L. Packer,et al. Photoperoxidation in isolated chloroplasts. I. Kinetics and stoichiometry of fatty acid peroxidation. , 1968, Archives of biochemistry and biophysics.
[50] Qianqian Shen,et al. Tolerance and bioaccumulation of Cd and Cu in Sesuvium portulacastrum. , 2018, Ecotoxicology and Environmental Safety.
[51] Z. Bie,et al. Melatonin pretreatment improves vanadium stress tolerance of watermelon seedlings by reducing vanadium concentration in the leaves and regulating melatonin biosynthesis and antioxidant-related gene expression. , 2018, Journal of plant physiology.
[52] R. Kohli,et al. Tolerance and hyperaccumulation of cadmium by a wild, unpalatable herb Coronopus didymus (L.) Sm. (Brassicaceae). , 2017, Ecotoxicology and environmental safety.
[53] M. Fujita,et al. Plant Response and Tolerance to Abiotic Oxidative Stress: Antioxidant Defense Is a Key Factor , 2012 .
[54] H. Aebi,et al. Catalase in vitro. , 1984, Methods in enzymology.