Phytoremediation Potential of Sorghum as a Bioenergy Crop in Pb-Amendment Soil
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[1] M. A. Salam,et al. Evaluation of dendroremediation potential of ten Quercus spp. for heavy metals contaminated soil: A three-year field trial. , 2022, Science of the Total Environment.
[2] M. Saleh,et al. Regression Models to Estimate Accumulation Capability of Six Metals by Two Macrophytes, Typha domingensis and Typha elephantina, Grown in an Arid Climate in the Mountainous Region of Taif, Saudi Arabia , 2021, Sustainability.
[3] I. Sur,et al. Sustainable Ecological Restoration of Sterile Dumps Using Robinia pseudoacacia , 2021, Sustainability.
[4] R. Pomykała,et al. Changes in soil pH and mobility of heavy metals in contaminated soils , 2021, European Journal of Soil Science.
[5] S. Orlandini,et al. Lead Bioaccumulation and Translocation in Herbaceous Plants Grown in Urban and Peri-Urban Soil and the Potential Human Health Risk , 2021, Agronomy.
[6] M. Rizwan,et al. Effects of silicon on heavy metal uptake at the soil-plant interphase: A review. , 2021, Ecotoxicology and environmental safety.
[7] S. Alrumman,et al. Heavy metals uptake by the global economic crop (Pisum sativum L.) grown in contaminated soils and its associated health risks , 2021, PloS one.
[8] H. Osman,et al. Bioaccumulation and human health risk assessment of heavy metals in food crops irrigated with freshwater and treated wastewater: a case study in Southern Cairo, Egypt , 2021, Environmental Science and Pollution Research.
[9] A. Patra,et al. Tolerance of cotton to elevated levels of Pb and its potential for phytoremediation , 2021, Environmental Science and Pollution Research.
[10] M. Rizwan,et al. Lead (Pb)-resistant bacteria inhibit Pb accumulation in dill (Anethum graveolens L.) by improving biochemical, physiological, and antioxidant enzyme response of plants , 2020, Environmental Science and Pollution Research.
[11] M. Arshad,et al. Enhanced phytoremediation of lead by soil applied organic and inorganic amendments: Pb phytoavailability, accumulation and metal recovery. , 2020, Chemosphere.
[12] K. Shaltout,et al. Prediction models based on soil properties for evaluating the heavy metal uptake into Hordeum vulgare L. grown in agricultural soils amended with different rates of sewage sludge , 2020, International journal of environmental health research.
[13] J. Bech,et al. A comparative study of the accumulation of trace elements in Brassicaceae plant species with phytoremediation potential , 2019, Applied Geochemistry.
[14] M. Rizwan,et al. EDTA-assisted phytoextraction of lead and cadmium by Pelargonium cultivars grown on spiked soil , 2019, International journal of phytoremediation.
[15] K. Yaqoob,et al. Comparative effectiveness of organic and inorganic amendments on cadmium bioavailability and uptake by Pelargonium hortorum , 2019, Journal of Soils and Sediments.
[16] Tomas Macek,et al. Phytoextraction of Heavy Metals: A Promising Tool for Clean-Up of Polluted Environment? , 2018, Front. Plant Sci..
[17] Shiliang Liu,et al. Screening ornamental plants to identify potential Cd hyperaccumulators for bioremediation. , 2018, Ecotoxicology and environmental safety.
[18] G. Brodie,et al. Phytoremediation of Pb and Cd contaminated soils by using sunflower ( Helianthus annuus ) plant , 2018, Annals of Agricultural Sciences.
[19] M. Javed,et al. Lead Toxicity in Cereals and Its Management Strategies: a Critical Review , 2018, Water, Air, & Soil Pollution.
[20] T. M. Jahangir,et al. Accumulation and distribution of lead (Pb) in plant tissues of guar (Cyamopsis tetragonoloba L.) and sesame (Sesamum indicum L.): profitable phytoremediation with biofuel crops , 2018 .
[21] V. Magliulo,et al. Metal compartmentalization in different biomass portions of Helianthus annuus L. and Sorghum bicolor L. grown in an agricultural field inside an urban fabric , 2017 .
[22] M. Mahmood-ul-Hassan,et al. Heavy metal phytoextraction—natural and EDTA-assisted remediation of contaminated calcareous soils by sorghum and oat , 2017, Environmental Monitoring and Assessment.
[23] Luciana Albuquerque Caldeira,et al. Banana fertigation with treated sanitary wastewater: postharvest and microbiological quality , 2017 .
[24] Zewei Cui,et al. Interaction between selenium and soil organic matter and its impact on soil selenium bioavailability: A review , 2017 .
[25] M. Prasad,et al. Ricinus communis L. (Castor bean), a potential multi-purpose environmental crop for improved and integrated phytoremediation , 2017 .
[26] P. Higueras,et al. Influence of the soil pH in the uptake and bioaccumulation of heavy metals (Fe, Zn, Cu, Pb and Mn) and other elements (Ca, K, Al, Sr and Ba) in vine leaves, Castilla-La Mancha (Spain) , 2017 .
[27] S. Mutiti,et al. Phytoremediation Potential of Helianthus annuus and Hydrangea paniculata in Copper and Lead-Contaminated Soil , 2017, Water, Air, & Soil Pollution.
[28] M. J. Salazar,et al. Multidisciplinary study of chemical and biological factors related to Pb accumulation in sorghum crops grown in contaminated soils and their toxicological implications , 2016 .
[29] T. Galal. Health hazards and heavy metals accumulation by summer squash (Cucurbita pepo L.) cultivated in contaminated soils , 2016, Environmental Monitoring and Assessment.
[30] A. Souza,et al. Potential of sunflower, castor bean, common buckwheat and vetiver as lead phytoaccumulators , 2016 .
[31] G. Merlina,et al. Phytoavailability of lead altered by two Pelargonium cultivars grown on contrasting lead-spiked soils , 2016, Journal of Soils and Sediments.
[32] Klára Komprdová,et al. Development and comparison of regression models for the uptake of metals into various field crops. , 2015, Environmental pollution.
[33] K. Khan,et al. Quantification of Heavy Metals in Mining Affected Soil and Their Bioaccumulation in Native Plant Species , 2015, International journal of phytoremediation.
[34] I. Cavoski,et al. Potential use of Sorghum bicolor and Carthamus tinctorius in phytoremediation of nickel, lead and zinc , 2015, International Journal of Environmental Science and Technology.
[35] A. Abdelhafez,et al. Feasibility of biochar manufactured from organic wastes on the stabilization of heavy metals in a metal smelter contaminated soil. , 2014, Chemosphere.
[36] V. Perumal,et al. Lead heavy metal toxicity induced changes on growth and antioxidative enzymes level in water hyacinths [Eichhornia crassipes (Mart.)] , 2014, Botanical Studies.
[37] M. Goni,et al. Uptake and Translocation of Metals in Different Parts of Crop Plants Irrigated with Contaminated Water from DEPZ Area of Bangladesh , 2014, Bulletin of Environmental Contamination and Toxicology.
[38] M. Mataa,et al. Evaluation of Sunflower (Helianthus annuus L.), Sorghum (Sorghum bicolor L.) and Chinese Cabbage (Brassica chinensis) for Phytoremediation of Lead Contaminated Soils , 2014 .
[39] R. Raper,et al. Energy sorghum biomass harvest thresholds and tillage effects on soil organic carbon and bulk density , 2013 .
[40] D. Gupta,et al. Moderate phosphorus application enhances Zn mobility and uptake in hyperaccumulator Sedum alfredii , 2013, Environmental Science and Pollution Research.
[41] D. Gupta,et al. Lead tolerance in plants: strategies for phytoremediation , 2013, Environmental Science and Pollution Research.
[42] A. Abdelhafez,et al. Environmental and Health Impacts of Successive Mineral Fertilization in Egypt , 2012 .
[43] Guowang Xu,et al. Effects of Short-Term High Temperature on Photosynthesis and Photosystem II Performance in Sorghum , 2011 .
[44] M. P. Gomes,et al. Ecophysiological and anatomical changes due to uptake and accumulation of heavy metal in Brachiaria decumbens , 2011 .
[45] H. Basri,et al. A Review on Heavy Metals (As, Pb, and Hg) Uptake by Plants through Phytoremediation , 2011 .
[46] V. Singh,et al. Modification of chromium (VI) phytotoxicity by exogenous gibberellic acid application in Pisum sativum (L.) seedlings , 2011, Acta Physiologiae Plantarum.
[47] A. Ruttens,et al. A dynamic model to calculate cadmium concentrations in bovine tissues from basic soil characteristics. , 2011, The Science of the total environment.
[48] J. Maszewski,et al. The impact of copper ions on growth, lipid peroxidation, and phenolic compound accumulation and localization in lentil (Lens culinaris Medic.) seedlings. , 2010, Journal of plant physiology.
[49] T. Vanek,et al. Effect of Heavy Metals on Inhibition of Root Elongation in 23 Cultivars of Flax (Linum usitatissimum L.) , 2010, Archives of environmental contamination and toxicology.
[50] I. Mijangos,et al. Soil microbial community as bioindicator of the recovery of soil functioning derived from metal phytoextraction with sorghum , 2009 .
[51] Jeng-Min Chiou,et al. Model evaluation of the phytoextraction potential of heavy metal hyperaccumulators and non-hyperaccumulators. , 2009, Environmental pollution.
[52] W. Wenzel,et al. Hydroponic screening for metal resistance and accumulation of cadmium and zinc in twenty clones of willows and poplars. , 2007, Environmental pollution.
[53] J. Duruibe,et al. Heavy metal pollution and human biotoxic effects , 2007 .
[54] LorettaY Li,et al. Phytoremediation Technology: Hyper-accumulation Metals in Plants , 2007 .
[55] G. Zerbi,et al. Removal of trace metals by Sorghum bicolor and Helianthus annuus in a site polluted by industrial wastes: a field experience. , 2007, Plant physiology and biochemistry : PPB.
[56] Xinde Cao,et al. Accumulation of Pb, Cu, and Zn in native plants growing on a contaminated Florida site. , 2006, The Science of the total environment.
[57] P. Ryser,et al. Effects of heavy-metal-contaminated soil on growth, phenology and biomass turnover of Hieracium piloselloides. , 2006, Environmental pollution.
[58] J. Dean,et al. Uptake of heavy metals by vegetable plants grown on contaminated soil and their bioavailability in the human gastrointestinal tract , 2006, Food additives and contaminants.
[59] J. Morton,et al. Growth and Metal Accumulation of Mycorrhizal Sorghum Exposed to Elevated Copper and Zinc , 2005 .
[60] Pallavi Sharma,et al. Lead toxicity in plants , 2005 .
[61] M Puschenreiter,et al. Rhizosphere characteristics of indigenously growing nickel hyperaccumulator and excluder plants on serpentine soil. , 2003, Environmental pollution.
[62] D. Barałkiewicz,et al. Accumulation and detoxification of lead ions in legumes. , 2002, Phytochemistry.
[63] Hwa Shik Youn,et al. Lead disturbs microtubule organization in the root meristem of Zea mays , 2000 .
[64] W. R. Berti,et al. Chelate-assisted phytoextraction of lead from contaminated soils , 1999 .
[65] Ilya Raskin,et al. Phytoextraction: the use of plants to remove heavy metals from soils. , 1995, Environmental science & technology.
[66] M. McBride. Environmental Chemistry of Soils , 1994 .
[67] A. L. Page,et al. A methodology for establishing phytotoxicity criteria for chromium, copper, nickel, and zinc in agricultural land application of municipal sewage sludges , 1992 .
[68] W. Lindsay,et al. Development of a DTPA soil test for zinc, iron, manganese and copper , 1978 .
[69] A. Hussain,et al. Zinc and iron oxide nanoparticles improved the plant growth and reduced the oxidative stress and cadmium concentration in wheat. , 2019, Chemosphere.
[70] S. Asthana,et al. Phytoremediation of Lead Contaminated Soil by using Sorghum Bicolor , 2015 .
[71] R. Amirnia,et al. EFFECT OF ZINC TOXICITY ON PLANT PRODUCTIVITY, CHLOROPHYLL AND ZN CONTENTS OF SORGHUM (SORGHUM BICOLOR) AND COMMON LAMBSQUARTER (CHENOPODIUM ALBUM) , 2012 .
[72] N. A. Hamadouche. Phytoremediation potential of Raphanus sativus L. for lead contaminated soil , 2012 .
[73] Guoping Zhang,et al. The influence of pH and organic matter content in paddy soil on heavy metal availability and their uptake by rice plants. , 2011, Environmental pollution.
[74] Ivanova,et al. Use of Sorghum Crops for in Situ Phytoremediation of Polluted Soils , 2011 .
[75] A. Shiva,et al. Toxic Effects of Lead on Growth and Some Biochemical and Ionic Parameters of Sunflower (Helianthus annuus L.) Seedlings , 2011 .
[76] A. Cokkizgin,et al. Effects of lead (PbCl 2 ) stress on germination of lentil ( Lens culinaris Medic.) lines , 2010 .
[77] W. Shu,et al. Removal of metals by sorghum plants from contaminated land. , 2009, Journal of environmental sciences.
[78] Geoffrey M Gadd,et al. Geomycology: biogeochemical transformations of rocks, minerals, metals and radionuclides by fungi, bioweathering and bioremediation. , 2007, Mycological research.
[79] S. Singh,et al. A comparative study of cadmium phytoextraction by accumulator and weed species. , 2005, Environmental pollution.
[80] Y. An. Soil ecotoxicity assessment using cadmium sensitive plants. , 2004, Environmental pollution.
[81] D. Kumawat,et al. Sorghum straw as an efficient remover of metal from waste water , 1991 .
[82] J. Gasser.. Heavy metals in soils , 1987 .
[83] D. Arnon,et al. Photosynthesis by isolated chloroplasts. IV. General concept and comparison of three photochemical reactions. , 1956, Biochimica et biophysica acta.