Zinc Supply Affects Cadmium Uptake and Translocation in the Hyperaccumulator Sedum Plumbizincicola as Evidenced by Isotope Fractionation.
暂无分享,去创建一个
Yongming Luo | Longhua Wu | P. Christie | Zhuo Li | M. Rehkämper | B. Coles | Yufang Sun | K. Kreissig | Jiawen Zhou | Rebekah E. T. Moore
[1] V. Chrastný,et al. Antagonistic Cd and Zn isotope behavior in the extracted soil fractions from industrial areas. , 2022, Journal of hazardous materials.
[2] K. H. Laursen,et al. Stable Isotope Fractionation of Metals and Metalloids in Plants: A Review , 2022, Frontiers in Plant Science.
[3] Fangbai Li,et al. Water Management Alters Cadmium Isotope Fractionation between Shoots and Nodes/Leaves in a Soil-Rice System. , 2021, Environmental science & technology.
[4] Tingqiang Li,et al. Exposure of cerium oxide nanoparticles to the hyperaccumulator Sedum alfredii decreases the uptake of cadmium via the apoplastic pathway. , 2021, Journal of hazardous materials.
[5] Yaolin Shi,et al. Theoretical isotope fractionation of cadmium during complexation with organic ligands , 2021, Chemical Geology.
[6] Zhenli Zhu,et al. Stable isotope fractionation of cadmium in the soil-rice-human continuum. , 2020, The Science of the total environment.
[7] G. Landrot,et al. Cadmium transfer in contaminated soil-rice systems: Insights from solid-state speciation analysis and stable isotope fractionation. , 2020, Environmental pollution.
[8] Longhua Wu,et al. Cadmium Isotopic Fractionation in the Soil-Plant System during Repeated Phytoextraction with a Cadmium Hyperaccumulating Plant Species. , 2020, Environmental science & technology.
[9] S. Thomine,et al. Mechanisms of Cadmium Accumulation in Plants , 2020 .
[10] J. Dunwell,et al. Cadmium isotope fractionation reveals genetic variation in Cd uptake and translocation by Theobroma cacao and role of natural resistance-associated macrophage protein 5 and heavy metal ATPase-family transporters , 2020, Horticulture Research.
[11] Yongming Luo,et al. Assessment of phytoextraction using Sedum plumbizincicola and rice production in Cd-polluted acid paddy soils of south China: A field study , 2019 .
[12] Yongming Luo,et al. Aluminum toxicity decreases the phytoextraction capability by cadmium/zinc hyperaccumulator Sedum plumbizincicola in acid soils. , 2019, Science of the Total Environment.
[13] Xiaoe Yang,et al. SaZIP4, an uptake transporter of Zn/Cd hyperaccumulator Sedum alfredii Hance , 2018, Environmental and Experimental Botany.
[14] A. Baker,et al. Hyperaccumulator Plants from China: A Synthesis of the Current State of Knowledge. , 2018, Environmental science & technology.
[15] Guirui Yu,et al. Stable isotope fractionation during uptake and translocation of cadmium by tolerant Ricinus communis and hyperaccumulator Solanum nigrum as influenced by EDTA. , 2018, Environmental pollution.
[16] W. Wilcke,et al. Fate of Cd in Agricultural Soils: A Stable Isotope Approach to Anthropogenic Impact, Soil Formation, and Soil-Plant Cycling. , 2018, Environmental science & technology.
[17] E. Bakatula,et al. Adsorption of Cadmium, Copper and Chromium by an Agricultural Soil Impacted by Mining Activities , 2017, Water, Air, & Soil Pollution.
[18] F. Zhao,et al. Heavy metal ATPase 3 (HMA3) confers cadmium hypertolerance on the cadmium/zinc hyperaccumulator Sedum plumbizincicola. , 2017, The New phytologist.
[19] H. Küpper,et al. Protein Biochemistry and Expression Regulation of Cadmium/Zinc Pumping ATPases in the Hyperaccumulator Plants Arabidopsis halleri and Noccaea caerulescens , 2017, Front. Plant Sci..
[20] W. Peijnenburg,et al. Pathways of root uptake and membrane transport of Cd2+ in the zinc/cadmium hyperaccumulating plant Sedum plumbizincicola , 2017, Environmental toxicology and chemistry.
[21] G. Kirk,et al. Experimental Determination of Zinc Isotope Fractionation in Complexes with the Phytosiderophore 2'-Deoxymugeneic Acid (DMA) and Its Structural Analogues, and Implications for Plant Uptake Mechanisms. , 2017, Environmental science & technology.
[22] D. Weiss,et al. Zinc Homeostasis and isotopic fractionation in plants: a review , 2017, Plant and Soil.
[23] C. Koh,et al. Mean activity coefficient of electrolytes: A critical evaluation of four physical models , 2016 .
[24] W. Wilcke,et al. Cadmium Isotope Fractionation in Soil-Wheat Systems. , 2016, Environmental science & technology.
[25] J. Morel,et al. Zinc Isotope Fractionation in the Hyperaccumulator Noccaea caerulescens and the Nonaccumulating Plant Thlaspi arvense at Low and High Zn Supply. , 2016, Environmental science & technology.
[26] Congqiang Liu,et al. Fractionation of Stable Cadmium Isotopes in the Cadmium Tolerant Ricinus communis and Hyperaccumulator Solanum nigrum , 2016, Scientific Reports.
[27] Xiaoe Yang,et al. Enhanced expression of SaHMA3 plays critical roles in Cd hyperaccumulation and hypertolerance in Cd hyperaccumulator Sedum alfredii Hance , 2016, Planta.
[28] N. Sarwar,et al. Zinc-cadmium interactions: Impact on wheat physiology and mineral acquisition. , 2015, Ecotoxicology and environmental safety.
[29] V. Chrastný,et al. Cadmium isotope fractionation within the soil profile complicates source identification in relation to Pb–Zn mining and smelting processes , 2015 .
[30] S. Saud,et al. Effects of tire rubber ash and zinc sulfate on crop productivity and cadmium accumulation in five rice cultivars under field conditions , 2015, Environmental Science and Pollution Research.
[31] Yaolin Shi,et al. Theoretical calculations of Cd isotope fractionation in hydrothermal fluids , 2015 .
[32] F. Albarède,et al. Density functional theory estimation of isotope fractionation of Fe, Ni, Cu, and Zn among species relevant to geochemical and biological environments , 2014 .
[33] J. Morel,et al. Nickel and zinc isotope fractionation in hyperaccumulating and nonaccumulating plants. , 2014, Environmental science & technology.
[34] Xiaoe Yang,et al. Zinc uptake kinetics in the low and high-affinity systems of two contrasting rice genotypes , 2014 .
[35] M. Palmgren,et al. Many rivers to cross: the journey of zinc from soil to seed , 2014, Front. Plant Sci..
[36] D. Sparks,et al. Complexation with dissolved organic matter and mobility control of heavy metals in the rhizosphere of hyperaccumulator Sedum alfredii. , 2013, Environmental pollution.
[37] N. Verbruggen,et al. Tolerance to cadmium in plants: the special case of hyperaccumulators , 2013, BioMetals.
[38] S. Clemens,et al. Nicotianamine is a major player in plant Zn homeostasis , 2013, BioMetals.
[39] E. Smolders,et al. Isotopic fractionation of Zn in tomato plants suggests the role of root exudates on Zn uptake , 2013, Plant and Soil.
[40] L. H. Wu,et al. Sedum plumbizincicola X.H. Guo et S.B. Zhou ex L.H. Wu (Crassulaceae): a new species from Zhejiang Province, China , 2013, Plant Systematics and Evolution.
[41] S. Luan,et al. Cadmium impairs ion homeostasis by altering K+ and Ca2+ channel activities in rice root hair cells. , 2012, Plant, cell & environment.
[42] J. Morel,et al. Fractionation of stable zinc isotopes in the field-grown zinc hyperaccumulator Noccaea caerulescens and the zinc-tolerant plant Silene vulgaris. , 2012, Environmental science & technology.
[43] P. Hinsinger,et al. Stable isotopes of Cu and Zn in higher plants: evidence for Cu reduction at the root surface and two conceptual models for isotopic fractionation processes. , 2012, Environmental science & technology.
[44] Manish Sainger,et al. Phytoextraction of Zinc: Physiological and Molecular Mechanism , 2012 .
[45] P. Oger,et al. Fractionation of stable zinc isotopes in the zinc hyperaccumulator Arabidopsis halleri and nonaccumulator Arabidopsis petraea. , 2011, Environmental science & technology.
[46] J. Araus,et al. Zinc isotopic fractionation in Phragmites australis in response to toxic levels of zinc , 2010, Journal of experimental botany.
[47] M. Hanikenne,et al. Metal accumulation in tobacco expressing Arabidopsis halleri metal hyperaccumulation gene depends on external supply , 2010, Journal of experimental botany.
[48] G. Kirk,et al. Evidence for the mechanisms of zinc uptake by rice using isotope fractionation. , 2010, Plant, cell & environment.
[49] F. Albarède,et al. Isotopic fractionation and transport mechanisms of Zn in plants , 2009 .
[50] Xiaoe Yang,et al. Effects of zinc and cadmium interactions on root morphology and metal translocation in a hyperaccumulating species under hydroponic conditions. , 2009, Journal of hazardous materials.
[51] C. Parat,et al. Cadmium speciation assessed by voltammetry, ion exchange and geochemical calculation in soil solutions collected after soil rewetting. , 2009, Chemosphere.
[52] Zhenli He,et al. Cadmium uptake and xylem loading are active processes in the hyperaccumulator Sedum alfredii. , 2009, Journal of plant physiology.
[53] C. Hermans,et al. Molecular mechanisms of metal hyperaccumulation in plants. , 2009, The New phytologist.
[54] E. Boyle,et al. Zinc isotope fractionation during high‐affinity and low‐affinity zinc transport by the marine diatom Thalassiosira oceanica , 2007 .
[55] Mark G. M. Aarts,et al. Large Expression Differences in Genes for Iron and Zinc Homeostasis, Stress Response, and Lignin Biosynthesis Distinguish Roots of Arabidopsis thaliana and the Related Metal Hyperaccumulator Thlaspi caerulescens1[W] , 2006, Plant Physiology.
[56] E. Smolders,et al. Labile Cd complexes increase Cd availability to plants. , 2006, Environmental science & technology.
[57] G. Kirk,et al. Isotopic discrimination of zinc in higher plants. , 2004, The New phytologist.
[58] L. Kochian,et al. Identification of Thlaspi caerulescens Genes That May Be Involved in Heavy Metal Hyperaccumulation and Tolerance. Characterization of a Novel Heavy Metal Transporting ATPase1 , 2004, Plant Physiology.
[59] I. Rodushkin,et al. Isotopic fractionation during diffusion of transition metal ions in solution. , 2004, Analytical chemistry.
[60] M. Nomura,et al. Zinc Isotope Separation by Ligand Exchange Chromatography Using Cation Exchange Resin , 2002 .
[61] S. McGrath,et al. Characteristics of cadmium uptake in two contrasting ecotypes of the hyperaccumulator Thlaspi caerulescens. , 2002, Journal of experimental botany.
[62] G. Sacchi,et al. Physiological evidence for a high-affinity cadmium transporter highly expressed in a Thlaspi caerulescens ecotype. , 2001, The New phytologist.
[63] L. Kochian,et al. The molecular physiology of heavy metal transport in the Zn/Cd hyperaccumulator Thlaspi caerulescens. , 2000, Proceedings of the National Academy of Sciences of the United States of America.