Cu Nanoparticles absorbed on chitosan hydrogels positively alter morphological, production, and quality characteristics of tomato
暂无分享,去创建一个
G. Cadenas-Pliego | A. Juárez-Maldonado | A. Benavides-Mendoza | H. Ortega-Ortíz | Fabián PÉREZ-LABRADA | G. Cadenas‐Pliego
[1] L. Guilherme,et al. Selenium biofortification and antioxidant activity in lettuce plants fed with selenate and selenite , 2018 .
[2] S. Shankar,et al. Fate of inorganic nanoparticles in agriculture , 2016 .
[3] M. Arshad,et al. Phyto-availability of phosphorus to Lactuca sativa in response to soil applied TiO2 nanoparticles. , 2015 .
[4] Y. Rui,et al. Uptake, transport, distribution and Bio-effects of SiO2 nanoparticles in Bt-transgenic cotton , 2014, Journal of Nanobiotechnology.
[5] E. Calabrese,et al. Hormetic dose-responses in nanotechnology studies. , 2014, The Science of the total environment.
[6] Ying-xu Chen,et al. Phytotoxicity and accumulation of copper oxide nanoparticles to the Cu-tolerant plant Elsholtzia splendens , 2014, Nanotoxicology.
[7] J. Peralta-Videa,et al. Exposure studies of core-shell Fe/Fe(3)O(4) and Cu/CuO NPs to lettuce (Lactuca sativa) plants: Are they a potential physiological and nutritional hazard? , 2014, Journal of hazardous materials.
[8] Hongtao Yu,et al. Mechanisms of nanotoxicity: Generation of reactive oxygen species , 2014, Journal of food and drug analysis.
[9] Shobha,et al. Biological Synthesis of Copper Nanoparticles and its impact-a Review , 2014 .
[10] T. Shalaby,et al. Molecular and Horticultural Characteristics of In vitro Induced Tomato Mutants , 2013 .
[11] Eun Ju Lee,et al. Functional analyses of nanoparticle toxicity: a comparative study of the effects of TiO2 and Ag on tomatoes (Lycopersicon esculentum). , 2013, Ecotoxicology and environmental safety.
[12] Gustavo Quesada-Roldán,et al. OBTENCIÓN DE LA CURVA DE EXTRACCIÓN NUTRIMENTAL DEL HÍBRIDO DE TOMATE FB-17 , 2013 .
[13] B. Moudgil,et al. Applications of Engineered Particulate Systems in Agriculture and Food Industry , 2013 .
[14] Gustavo Quesada-Roldán,et al. OBTENCIÓN DE LA CURVA DE EXTRACCIÓN NUTRIMENTAL DEL HÍBRIDO DE TOMATE FB-17 Obtaining of the Absorption Curve for the FB-17 Tomato Hybrid , 2013 .
[15] J. White,et al. Toxicity of silver and copper to Cucurbita pepo: Differential effects of nano and bulk‐size particles , 2012, Environmental toxicology.
[16] J. Nsor-Atindana,et al. Quantification of Total Polyphenolic Content and Antimicrobial Activity of Cocoa (Theobroma cacao L.) Bean Shells , 2012 .
[17] Jagadish,et al. Effect of Copper Oxide Nano Particle on Seed Germination of Selected Crops , 2012 .
[18] P. Sahoo,et al. Hydrogels: A Review , 2012 .
[19] Chandan K Sen,et al. Injectable, rapid gelling and highly flexible hydrogel composites as growth factor and cell carriers. , 2010, Acta biomaterialia.
[20] L. Adam,et al. Chitosan in Plant Protection , 2010, Marine drugs.
[21] P. Somasundaran,et al. Nanoparticles: Characteristics, Mechanisms and Modulation of Biotoxicity , 2010 .
[22] F. Anwar,et al. Effect of Extraction Solvent/Technique on the Antioxidant Activity of Selected Medicinal Plant Extracts , 2009, Molecules.
[23] Thu-Trang Thach,et al. Length-scale mediated adhesion and directed growth of neural cells by surface-patterned poly(ethylene glycol) hydrogels. , 2009, Biomaterials.
[24] R. Vongpromek,et al. Chitosan effects on floral production, gene expression, and anatomical changes in the Dendrobium orchid , 2008 .
[25] Charles L. Wilson,et al. Chitosan as a potential natural compound to control pre and postharvest diseases of horticultural commodities , 2006 .
[26] A. A. Steiner. A universal method for preparing nutrient solutions of a certain desired composition , 1961, Plant and Soil.
[27] Neeraj Kumar,et al. Hydrogels for pharmaceutical and biomedical applications. , 2005, Critical reviews in therapeutic drug carrier systems.
[28] V. Piironen,et al. Antioxidative and growth-promoting effect of selenium on senescing lettuce , 2001, Plant and Soil.
[29] R. Dahlgren,et al. Evaluation of Methods for Measuring Polyphenols in Conifer Foliage , 2000, Journal of Chemical Ecology.
[30] O. Massenet,et al. Iron induces ferritin synthesis in maize plantlets , 1992, Plant Molecular Biology.
[31] W. Khan,et al. Chitosan and chitin oligomers increase phenylalanine ammonia-lyase and tyrosine ammonia-lyase activities in soybean leaves. , 2003, Journal of plant physiology.
[32] Penelope Perkins-Veazie,et al. A Quantitative Assay for Lycopene That Utilizes Reduced Volumes of Organic Solvents , 2002 .
[33] G. Pastori,et al. Common Components, Networks, and Pathways of Cross-Tolerance to Stress. The Central Role of “Redox” and Abscisic Acid-Mediated Controls1 , 2002, Plant Physiology.
[34] A. R. Kulkarni,et al. Hydrogels as controlled release devices in agriculture , 2002 .
[35] M. N. R. Kumar. A review of chitin and chitosan applications , 2000 .
[36] Nikolaos A. Peppas,et al. PREPARATION, STRUCTURE AND DIFFUSIONAL BEHAVIOR OF HYDROGELS IN CONTROLLED RELEASE , 1993 .
[37] K. Asada,et al. Purification of ascorbate peroxidase in spinach chloroplasts; its inactivation in ascorbate-depleted medium and reactivation by monodehydroascorbate radical , 1987 .
[38] L. Flohé,et al. Assays of glutathione peroxidase. , 1984, Methods in enzymology.
[39] R. Dhindsa,et al. Leaf Senescence: Correlated with Increased Levels of Membrane Permeability and Lipid Peroxidation, and Decreased Levels of Superoxide Dismutase and Catalase , 1981 .
[40] W. Horwitz. Official Methods of Analysis , 1980 .
[41] 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.
[42] E. Epstein. Mineral Nutrition of Plants: Principles and Perspectives , 1972 .