Oxidative stress triggered by arsenic in a tropical macrophyte is alleviated by endogenous and exogenous nitric oxide
暂无分享,去创建一个
[1] L. Modolo,et al. Hydrogen sulfide: a new endogenous player in an old mechanism of plant tolerance to high salinity , 2017 .
[2] N. Khan,et al. Nitric oxide improves S-assimilation and GSH production to prevent inhibitory effects of cadmium stress on photosynthesis in mustard (Brassica juncea L.). , 2017, Nitric oxide : biology and chemistry.
[3] Meetu Gupta,et al. An update on nitric oxide and its benign role in plant responses under metal stress. , 2017, Nitric oxide : biology and chemistry.
[4] O. Dhankher,et al. A protective role for nitric oxide and salicylic acid for arsenite phytotoxicity in rice (Oryza sativa L.). , 2017, Plant physiology and biochemistry : PPB.
[5] J. Oliveira,et al. Phytoremediation of arsenic-contaminated water: the role of antioxidant metabolism of Azolla caroliniana Willd. (Salviniales) , 2017 .
[6] P. E. Menezes-Silva,et al. The Involvement of Nitric Oxide in Integration of Plant Physiological and Ultrastructural Adjustments in Response to Arsenic , 2017, Front. Plant Sci..
[7] L. Modolo,et al. Salinity-induced accumulation of endogenous H2S and NO is associated with modulation of the antioxidant and redox defense systems in Nicotiana tabacum L. cv. Havana. , 2017, Plant science : an international journal of experimental plant biology.
[8] N. Khan,et al. Nitric Oxide Alleviates Salt Stress Inhibited Photosynthetic Performance by Interacting with Sulfur Assimilation in Mustard , 2016, Front. Plant Sci..
[9] Neha Singh,et al. Mechanisms of nitric oxide crosstalk with reactive oxygen species scavenging enzymes during abiotic stress tolerance in plants , 2016, Free radical research.
[10] O. Dhankher,et al. Nitric Oxide Alleviated Arsenic Toxicity by Modulation of Antioxidants and Thiol Metabolism in Rice (Oryza sativa L.) , 2016, Front. Plant Sci..
[11] M. Talano,et al. Arsenic toxicity in soybean seedlings and their attenuation mechanisms. , 2016, Plant physiology and biochemistry : PPB.
[12] L. C. da Silva,et al. Arsenic accumulation in Brassicaceae seedlings and its effects on growth and plant anatomy. , 2016, Ecotoxicology and environmental safety.
[13] L. Freschi,et al. Nitric oxide signaling and its crosstalk with other plant growth regulators in plant responses to abiotic stress , 2016, Environmental Science and Pollution Research.
[14] N. M. Silveira,et al. Nitric Oxide Attenuates Oxidative Stress Induced by Arsenic in Lettuce (Lactuca sativa) Leaves , 2015, Water, Air, & Soil Pollution.
[15] F. J. Corpas,et al. Nitric oxide from a "green" perspective. , 2015, Nitric oxide : biology and chemistry.
[16] D. Chauhan,et al. Effect of Arsenic on Growth, Arsenic Uptake, Distribution of Nutrient Elements and Thiols in Seedlings of Wrightia arborea (Dennst.) Mabb. , 2015, International journal of phytoremediation.
[17] P. N. Linnik. Arsenic in Natural Waters: Forms of Occurrence, Peculiarities of Migration, and Toxicity (a Review) , 2015 .
[18] C. Ribeiro,et al. Arsenic toxicity: cell signalling and the attenuating effect of nitric oxide in Eichhornia crassipes , 2015, Biologia Plantarum.
[19] B. Rodríguez-Garay,et al. SNP as an Effective Donor of Nitric Oxide for in vitro Plant Cell and Tissue Culture , 2014 .
[20] R. Upadhyay. Metal stress in plants: its detoxification in natural environment , 2014, Brazilian Journal of Botany.
[21] F. S. Farnese,et al. Evaluation of the potential of Pistia stratiotes L. (water lettuce) for bioindication and phytoremediation of aquatic environments contaminated with arsenic. , 2014, Brazilian journal of biology = Revista brasleira de biologia.
[22] A. Castro,et al. Partial inhibition of Cdk1 in G2 phase overrides the SAC and decouples mitotic events , 2014, Cell cycle.
[23] Paulo E. M. Silva,et al. Effects of Adding Nitroprusside on Arsenic Stressed Response of Pistia stratiotes L. Under Hydroponic Conditions , 2014, International journal of phytoremediation.
[24] G. Loake,et al. Cross-talk of nitric oxide and reactive oxygen species in plant programed cell death , 2013, Frontiers in Plant Science.
[25] J. Oliveira,et al. Plant Responses to Arsenic: the Role of Nitric Oxide , 2013, Water, Air, & Soil Pollution.
[26] L. Frungillo,et al. Nitric oxide signaling and homeostasis in plants: a focus on nitrate reductase and S-nitrosoglutathione reductase in stress-related responses , 2013, Brazilian Journal of Botany.
[27] P. Mylona,et al. Developmental stage- and concentration-specific sodium nitroprusside application results in nitrate reductase regulation and the modification of nitrate metabolism in leaves of Medicago truncatula plants , 2013, Plant signaling & behavior.
[28] J. Oliveira,et al. Arsenate and arsenite: the toxic effects on photosynthesis and growth of lettuce plants , 2013, Acta Physiologiae Plantarum.
[29] Weihua Chen,et al. Arsenic Toxicity: The Effects on Plant Metabolism , 2012, Front. Physio..
[30] Cheng Zhu,et al. Endogenous nitric oxide mediates alleviation of cadmium toxicity induced by calcium in rice seedlings. , 2012, Journal of environmental sciences.
[31] G. Ismail. Protective role of nitric oxide against arsenic-induced damages in germinating mung bean seeds , 2012, Acta Physiologiae Plantarum.
[32] D. Talukdar. Arsenic-induced oxidative stress in the common bean legume, Phaseolus vulgaris L. seedlings and its amelioration by exogenous nitric oxide , 2012, Physiology and Molecular Biology of Plants.
[33] L. Modolo,et al. Electrolyte leakage and chlorophyll a fluorescence among castor bean cultivars under induced water deficit , 2012, Acta Physiologiae Plantarum.
[34] H. Hasegawa,et al. Aquatic arsenic: phytoremediation using floating macrophytes. , 2011, Chemosphere.
[35] Andrew Burgess,et al. Loss of human Greatwall results in G2 arrest and multiple mitotic defects due to deregulation of the cyclin B-Cdc2/PP2A balance , 2010, Proceedings of the National Academy of Sciences.
[36] Han Lu,et al. Exogenous nitric oxide enhances cadmium tolerance of rice by increasing pectin and hemicellulose contents in root cell wall , 2009, Planta.
[37] P. Miretzky,et al. Simultaneous heavy metal removal mechanism by dead macrophytes. , 2006, Chemosphere.
[38] A. Cirelli,et al. Aquatic macrophytes potential for the simultaneous removal of heavy metals (Buenos Aires, Argentina). , 2004, Chemosphere.
[39] C. Kao,et al. Aluminum Effects on Lipid Peroxidation and Antioxidative Enzyme Activities in Rice Leaves , 2003, Biologia Plantarum.
[40] A. Boveris,et al. Measurement of superoxide radical and hydrogen peroxide production in isolated cells and subcellular organelles. , 2002, Methods in enzymology.
[41] F. Murad,et al. Novel effects of nitric oxide. , 2003, Annual review of pharmacology and toxicology.
[42] Xiaoping Liu,et al. The biological lifetime of nitric oxide: implications for the perivascular dynamics of NO and O2. , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[43] A. Karr,et al. Superoxide anion generation in effective and ineffective soybean root nodules , 2001 .
[44] J. Gebicki,et al. A critical evaluation of the effect of sorbitol on the ferric-xylenol orange hydroperoxide assay. , 2000, Analytical biochemistry.
[45] C. Forney,et al. Improving the thiobarbituric acid-reactive-substances assay for estimating lipid peroxidation in plant tissues containing anthocyanin and other interfering compounds , 1999, Planta.
[46] P. R. Mosquim,et al. Aluminum effects on lipid peroxidation and on the activities of enzymes of oxidative metabolism in sorghum. , 1999 .
[47] D. Klessig,et al. Defense gene induction in tobacco by nitric oxide, cyclic GMP, and cyclic ADP-ribose. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[48] R. Dixon,et al. Nitric oxide functions as a signal in plant disease resistance , 1998, Nature.
[49] J. S. Hyde,et al. Permeability of nitric oxide through lipid bilayer membranes. , 1996, Free radical research.
[50] K.,et al. Changes in Isozyme Profiles of Catalase, Peroxidase, and Glutathione Reductase during Acclimation to Chilling in Mesocotyls of Maize Seedlings , 1995, Plant physiology.
[51] G. Pastori,et al. Antioxidant Defences under Hyperoxygenic and Hyperosmotic Conditions in Leaves of Two Lines of Maize with Differential Sensitivity to Drought , 1993 .
[52] S. Pezeshki,et al. Effect of dimethylarsenic acid (DMAA) on growth, tissue arsenic, and photosynthesis of rice plants , 1993 .
[53] I. Fridovich,et al. Superoxide dismutases. , 1975, Annual review of biochemistry.
[54] E. Havir,et al. Biochemical and developmental characterization of multiple forms of catalase in tobacco leaves. , 1987, Plant physiology.
[55] K. Asada,et al. Hydrogen Peroxide is Scavenged by Ascorbate-specific Peroxidase in Spinach Chloroplasts , 1981 .
[56] M. M. Bradford. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. , 1976, Analytical biochemistry.
[57] R. Clárk. Characterization of phosphatase of intact maize roots. , 1975, Journal of agricultural and food chemistry.
[58] I. Fridovich,et al. Superoxide dismutase: improved assays and an assay applicable to acrylamide gels. , 1971, Analytical biochemistry.
[59] B. Chance,et al. The assay of catalases and peroxidases. , 2006, Methods of biochemical analysis.