Arsenic in the hyperaccumulator Pteris vittata: A review of benefits, toxicity, and metabolism.
暂无分享,去创建一个
Guoxiang Wang | Yanshan Chen | Mingxi Zhou | Fei Zhao | Hongyi Shi | Yu Han
[1] E. Calabrese,et al. Applications of the hormesis concept in soil and environmental health research , 2023, Soil & Environmental Health.
[2] L. Ma,et al. Arsenic induced plant growth by increasing its nutrient uptake in as-hyperaccumulator Pteris vittata: Comparison of arsenate and arsenite. , 2023, Environmental pollution.
[3] Yanshan Chen,et al. Calcium acetate enhances both drought tolerance and arsenic accumulation in Pteris vittata , 2022, Environmental Pollutants and Bioavailability.
[4] Zhong Tang,et al. Molecular mechanisms underlying the toxicity and detoxification of trace metals and metalloids in plants. , 2022, Journal of integrative plant biology.
[5] Yue Cao,et al. Phytate and Arsenic Enhance Each Other's Uptake in As-hyperaccumulator Pteris vittata: Root Exudation of Phytate and Phytase, and Plant Uptake of Phytate-P. , 2022, Environmental science & technology.
[6] Yue Cao,et al. Selenium Increased Arsenic Accumulation by Upregulating the Expression of Genes Responsible for Arsenic Reduction, Translocation, and Sequestration in Arsenic Hyperaccumulator Pteris vittata. , 2022, Environmental science & technology.
[7] Yue Cao,et al. Novel Mycorrhiza-Specific P Transporter PvPht1;6 Contributes to As Accumulation at the Symbiotic Interface of As-Hyperaccumulator Pteris vittata. , 2022, Environmental science & technology.
[8] Yue Cao,et al. Arsenic-induced up-regulation of P transporters PvPht1;3-1;4 enhances both As and P uptake in As-hyperaccumulator Pteris vittata. , 2022, Journal of hazardous materials.
[9] Shuhe Wei,et al. Co-high-efficiency washing agents for simultaneous removal of Cd, Pb and As from smelting soil with risk assessment. , 2022, Chemosphere.
[10] K. Miyauchi,et al. Arsenic uptake by Pteris vittata in a subarctic arsenic-contaminated agricultural field in Japan: An 8-year study. , 2022, The Science of the total environment.
[11] Lu Feng,et al. Characterization of a novel arsenite long-distance transporter from arsenic hyperaccumulator fern Pteris vittata. , 2022, New Phytologist.
[12] Yue Cao,et al. Geographical distribution of As-hyperaccumulator Pteris vittata in China: Environmental factors and climate changes. , 2021, The Science of the total environment.
[13] Yue Cao,et al. Novel PvACR3;2 and PvACR3;3 genes from arsenic-hyperaccumulator Pteris vittata and their roles in manipulating plant arsenic accumulation. , 2021, Journal of hazardous materials.
[14] E. Calabrese,et al. Accumulator plants and hormesis. , 2021, Environmental pollution.
[15] S. Perveen,et al. Allelopathic hormesis and potent allelochemicals from multipurpose tree Moringa oleifera leaf extract , 2021 .
[16] C. Inoue,et al. Long-term effectiveness of microbe-assisted arsenic phytoremediation by Pteris vittata in field trials. , 2020, The Science of the total environment.
[17] G. Berta,et al. Phytoremediation of a Highly Arsenic Polluted Site, Using Pteris vittata L. and Arbuscular Mycorrhizal Fungi , 2020, Plants.
[18] E. Calabrese,et al. Hormesis: Highly Generalizable and Beyond Laboratory. , 2020, Trends in plant science.
[19] Yue Cao,et al. Efficient arsenate reduction in As-hyperaccumulator Pteris vittata are mediated by novel arsenate reductases PvHAC1 and PvHAC2. , 2020, Journal of hazardous materials.
[20] E. Calabrese,et al. Environmental toxicology and ecotoxicology: How clean is clean? Rethinking dose-response analysis. , 2020, The Science of the total environment.
[21] Langtao Xiao,et al. Pennisetum sinese: A Potential Phytoremediation Plant for Chromium Deletion from Soil , 2020, Sustainability.
[22] M. Sadowsky,et al. Indigenous soil bacteria and the hyperaccumulator Pteris vittata mediate phytoremediation of soil contaminated with arsenic species. , 2020, Ecotoxicology and environmental safety.
[23] Shahid,et al. Metal(loid)s (As, Hg, Se, Pb and Cd) in paddy soil: Bioavailability and potential risk to human health. , 2020, The Science of the total environment.
[24] Gejiao Wang,et al. Surfactants Enhanced Soil Arsenic Phytoextraction Efficiency by Pteris vittata L. , 2020, Bulletin of Environmental Contamination and Toxicology.
[25] Shubin Sun,et al. Expression of New Pteris vittata Phosphate Transporter PvPht1;4 Reduces Arsenic Translocation from the Roots to Shoots in Tobacco Plants. , 2019, Environmental science & technology.
[26] L. Ma,et al. Arsenic accumulation and distribution in Pteris vittata fronds of different maturity: Impacts of soil As concentrations. , 2019, The Science of the total environment.
[27] Yuedong Guo,et al. Phytoaccumulation of As by Pteris vittata supplied with phosphorus fertilizers under different soil moisture regimes – A field case , 2019, Ecological Engineering.
[28] Guohua Xu,et al. Heterologous Expression of Pteris vittata Phosphate Transporter PvPht1;3 Enhances Arsenic Translocation to and Accumulation in Tobacco Shoots. , 2019, Environmental science & technology.
[29] E. Muszyńska,et al. Dual Role of Metallic Trace Elements in Stress Biology—From Negative to Beneficial Impact on Plants , 2019, International journal of molecular sciences.
[30] Yong-guan Zhu,et al. Potential use of the Pteris vittata arsenic hyperaccumulation-regulation network for phytoremediation. , 2019, Journal of hazardous materials.
[31] E. Calabrese,et al. Estimating the range of the maximum hormetic stimulatory response , 2019, Environmental research.
[32] L. Rossato,et al. Assessing germination characteristics of Australian native plant species in metal/metalloid solution. , 2019, Journal of hazardous materials.
[33] Tongbin Chen,et al. Comparison among soil additives for enhancing Pteris vittata L.: Phytoremediation of As-contaminated soil , 2018, International journal of phytoremediation.
[34] A. Baker,et al. Hyperaccumulator Plants from China: A Synthesis of the Current State of Knowledge. , 2018, Environmental science & technology.
[35] L. Ma,et al. Arsenic-induced nutrient uptake in As-hyperaccumulator Pteris vittata and their potential role to enhance plant growth. , 2018, Chemosphere.
[36] Y. Ok,et al. Correction to: Heavy metal-induced oxidative stress on seed germination and seedling development: a critical review , 2017, Environmental Geochemistry and Health.
[37] Y. Ok,et al. Arsenic removal by Japanese oak wood biochar in aqueous solutions and well water: Investigating arsenic fate using integrated spectroscopic and microscopic techniques. , 2017, The Science of the total environment.
[38] Yue Cao,et al. Heterologous Expression of Pteris vittata Arsenite Antiporter PvACR3;1 Reduces Arsenic Accumulation in Plant Shoots. , 2017, Environmental science & technology.
[39] L. Ma,et al. Mechanisms of efficient As solubilization in soils and As accumulation by As-hyperaccumulator Pteris vittata. , 2017, Environmental pollution.
[40] Jiming Xu,et al. OsHAC4 is critical for arsenate tolerance and regulates arsenic accumulation in rice. , 2017, The New phytologist.
[41] Yue Cao,et al. Arsenic-hyperaccumulator Pteris vittata efficiently solubilized phosphate rock to sustain plant growth and As uptake. , 2017, Journal of hazardous materials.
[42] A. Tanveer,et al. Can hormesis of plant-released phytotoxins be used to boost and sustain crop production? , 2017 .
[43] Y. Ok,et al. Phosphate-assisted phytoremediation of arsenic by Brassica napus and Brassica juncea: Morphological and physiological response , 2017, International journal of phytoremediation.
[44] U. Saha,et al. Arsenic hyperaccumulating fern: Implications for remediation of arsenic contaminated soils , 2016 .
[45] D. Salt,et al. OsHAC1;1 and OsHAC1;2 Function as Arsenate Reductases and Regulate Arsenic Accumulation1 , 2016, Plant Physiology.
[46] S. Keshavkant,et al. Arsenic-induced metabolic disturbances and their mitigation mechanisms in crop plants: A review , 2016, Biologia.
[47] Y. Ok,et al. Arsenic(V) biosorption by charred orange peel in aqueous environments. , 2016, International journal of phytoremediation.
[48] L. Ma,et al. Arsenic uptake, arsenite efflux and plant growth in hyperaccumulator Pteris vittata: Role of arsenic-resistant bacteria. , 2016, Chemosphere.
[49] L. Ma,et al. High As exposure induced substantial arsenite efflux in As-hyperaccumulator Pteris vittata. , 2016, Chemosphere.
[50] Xingyuan He,et al. Hormesis Effects Induced by Cadmium on Growth and Photosynthetic Performance in a Hyperaccumulator, Lonicera japonica Thunb. , 2015, Journal of Plant Growth Regulation.
[51] D. Salt,et al. Genome-wide Association Mapping Identifies a New Arsenate Reductase Enzyme Critical for Limiting Arsenic Accumulation in Plants , 2014, PLoS biology.
[52] L. Ma,et al. Arsenic enhanced plant growth and altered rhizosphere characteristics of hyperaccumulator Pteris vittata. , 2014, Environmental pollution.
[53] L. Ma,et al. Pteris vittata continuously removed arsenic from non-labile fraction in three contaminated-soils during 3.5 years of phytoextraction. , 2014, Journal of hazardous materials.
[54] C. Navarro,et al. Natural variation in arsenate tolerance identifies an arsenate reductase in Arabidopsis thaliana , 2014, Nature Communications.
[55] R. Naidu,et al. Toxicity of arsenic species to three freshwater organisms and biotransformation of inorganic arsenic by freshwater phytoplankton (Chlorella sp. CE-35). , 2014, Ecotoxicology and environmental safety.
[56] M. Garza-González,et al. Arsenic accumulation in maize crop (Zea mays): a review. , 2014, The Science of the total environment.
[57] Wenzhong Xu,et al. The fronds tonoplast quantitative proteomic analysis in arsenic hyperaccumulator Pteris vittata L. , 2014, Journal of proteomics.
[58] Yong-guan Zhu,et al. Earth Abides Arsenic Biotransformations. , 2014, Annual review of earth and planetary sciences.
[59] H. Ghasempour,et al. EFFECT OF ARSENIC ON GERMINATION OF ISATIS CAPPADOCICA DESV., A NEWLY DISCOVERED ARSENIC HYPERACCUMULATOR , 2013 .
[60] C. Poschenrieder,et al. Do toxic ions induce hormesis in plants? , 2013, Plant science : an international journal of experimental plant biology.
[61] Wenzhong Xu,et al. Engineering arsenic tolerance and hyperaccumulation in plants for phytoremediation by a PvACR3 transgenic approach. , 2013, Environmental science & technology.
[62] C. N. Stewart,et al. Stable Transformation of Ferns Using Spores as Targets: Pteris vittata and Ceratopteris thalictroides1[W][OPEN] , 2013, Plant Physiology.
[63] X. Chris Le,et al. Arsenic Binding to Proteins , 2013, Chemical reviews.
[64] L. Ma,et al. Sparingly-soluble phosphate rock induced significant plant growth and arsenic uptake by Pteris vittata from three contaminated soils. , 2013, Environmental science & technology.
[65] Yanqing Huang,et al. Cadmium‐Induced Physiological Response in Lonicera japonica Thunb. , 2013 .
[66] J. Jadhav,et al. Nopalea cochenillifera, a potential chromium (VI) hyperaccumulator plant , 2013, Environmental Science and Pollution Research.
[67] Yanqing Huang,et al. Hormesis phenomena under Cd stress in a hyperaccumulator—Lonicerajaponica Thunb , 2013, Ecotoxicology.
[68] S. M. Ghaderian,et al. EFFECT OF ARSENIC ON GERMINATION, PHOTOSYNTHESIS AND GROWTH PARAMETERS OF TWO WINTER WHEAT VARIETIES IN IRAN , 2013 .
[69] Weihua Chen,et al. Arsenic Toxicity: The Effects on Plant Metabolism , 2012, Front. Physio..
[70] X. Liao,et al. Influence of amendments on soil arsenic fractionation and phytoavailability by Pteris vittata L. , 2012, Chemosphere.
[71] F. Maathuis,et al. Heterologous expression of the yeast arsenite efflux system ACR3 improves Arabidopsis thaliana tolerance to arsenic stress. , 2012, The New phytologist.
[72] S. McGrath,et al. Phytoremediation of arsenic contaminated paddy soils with Pteris vittata markedly reduces arsenic uptake by rice. , 2011, Environmental pollution.
[73] L. Nunes,et al. Inorganic arsenic in Chinese food and its cancer risk. , 2011, Environment international.
[74] C. Inoue,et al. Characterization of As efflux from the roots of As hyperaccumulator Pteris vittata L. , 2011, Planta.
[75] Jen‐How Huang,et al. Organic Arsenic in the Soil Environment: Speciation, Occurrence, Transformation, and Adsorption Behavior , 2011 .
[76] N. Rascio,et al. Heavy metal hyperaccumulating plants: how and why do they do it? And what makes them so interesting? , 2011, Plant science : an international journal of experimental plant biology.
[77] D. Salt,et al. A Vacuolar Arsenite Transporter Necessary for Arsenic Tolerance in the Arsenic Hyperaccumulating Fern Pteris vittata Is Missing in Flowering Plants[W][OA] , 2010, Plant Cell.
[78] P. Kopittke,et al. Trace metal phytotoxicity in solution culture: a review. , 2010, Journal of experimental botany.
[79] Xuexi Yang,et al. Evidence of vacuolar compartmentalization of arsenic in the hyperaccumulator Pteris vittata , 2009 .
[80] Xingyuan He,et al. Accumulation and tolerance characteristics of cadmium in a potential hyperaccumulator--Lonicera japonica Thunb. , 2009, Journal of hazardous materials.
[81] N. Tharayil. To survive or to slay , 2009, Plant signaling & behavior.
[82] V. Sharma,et al. Aquatic arsenic: toxicity, speciation, transformations, and remediation. , 2009, Environment international.
[83] P. Trivedi,et al. Effect of arsenic on growth, oxidative stress, and antioxidant system in rice seedlings. , 2009, Ecotoxicology and environmental safety.
[84] C. Morris,et al. Elemental allelopathy: processes, progress, and pitfalls , 2009, Plant Ecology.
[85] F. Maathuis,et al. Arsenite transport in plants , 2009, Cellular and Molecular Life Sciences.
[86] A. Volpi Ghirardini,et al. An innovative stabilization/solidification treatment For contaminated soil remediation: demonstration project results , 2009 .
[87] S. McGrath,et al. Arsenic uptake and metabolism in plants. , 2009, The New phytologist.
[88] L. Ma,et al. Effects of selenium on arsenic uptake in arsenic hyperaccumulator Pteris vittata L. , 2009, Bioresource technology.
[89] Yong-guan Zhu,et al. Highly efficient xylem transport of arsenite in the arsenic hyperaccumulator Pteris vittata. , 2008, The New phytologist.
[90] B. Kondratieff,et al. Selenium hyperaccumulation reduces plant arthropod loads in the field. , 2008, The New phytologist.
[91] S. McGrath,et al. Rapid reduction of arsenate in the medium mediated by plant roots. , 2007, The New phytologist.
[92] L. Ma,et al. Arsenic hyperaccumulation in the Chinese brake fern (Pteris vittata) deters grasshopper (Schistocerca americana) herbivory. , 2007, The New phytologist.
[93] Xuexi Yang,et al. Hyperaccumulation of arsenic by callus, sporophytes and gametophytes of Pteris vittata cultured in vitro , 2007, Plant Cell Reports.
[94] Yong-guan Zhu,et al. A CDC25 homologue from rice functions as an arsenate reductase. , 2007, The New phytologist.
[95] R. Chaney,et al. Do high-nickel leaves shed by the nickel hyperaccumulator Alyssum murale inhibit seed germination of competing plants? , 2007, The New phytologist.
[96] P. Meerts,et al. Do metal-rich plants deter herbivores? A field test of the defence hypothesis , 2007, Oecologia.
[97] David E Salt,et al. Localizing the biochemical transformations of arsenate in a hyperaccumulating fern. , 2006, Environmental science & technology.
[98] David E Salt,et al. A Novel Arsenate Reductase from the Arsenic Hyperaccumulating Fern Pteris vittata1 , 2006, Plant Physiology.
[99] Nandita Singh,et al. Arsenic speciation, and arsenic and phosphate distribution in arsenic hyperaccumulator Pteris vittata L. and non-hyperaccumulator Pteris ensiformis L. , 2006, Environmental pollution.
[100] Om Parkash Dhankher,et al. Hyperaccumulation of arsenic in the shoots of Arabidopsis silenced for arsenate reductase (ACR2). , 2006, Proceedings of the National Academy of Sciences of the United States of America.
[101] M. Bliek,et al. Enhanced arsenate reduction by a CDC25-like tyrosine phosphatase explains increased phytochelatin accumulation in arsenate-tolerant Holcus lanatus. , 2006, The Plant journal : for cell and molecular biology.
[102] M. Eubanks,et al. Nickel hyperaccumulation by Streptanthus polygaloides protects against the folivore Plutella xylostella (Lepidoptera: Plutellidae) , 2006, Plant Ecology.
[103] X. Liao,et al. Effect of arsenic on chloroplast ultrastructure and calcium distribution in arsenic hyperaccumulator Pteris vittata L. , 2006, Chemosphere.
[104] M. Wong,et al. Arsenic Uptake and Accumulation in Fern Species Growing at Arsenic-Contaminated Sites of Southern China: Field Surveys , 2006, International journal of phytoremediation.
[105] R. Jiang,et al. Cadmium hyperaccumulation protects Thlaspi caerulescens from leaf feeding damage by thrips (Frankliniella occidentalis). , 2005, The New phytologist.
[106] S. Duke,et al. Dose-Response—A Challenge for Allelopathy? , 2005, Nonlinearity in biology, toxicology, medicine.
[107] U. Krämer,et al. Phytoremediation: novel approaches to cleaning up polluted soils. , 2005, Current opinion in biotechnology.
[108] J. A. Smith,et al. Metal hyperaccumulation in plants: mechanisms of defence against insect herbivores , 2005 .
[109] N. Caille,et al. Comparison of root absorption, translocation and tolerance of arsenic in the hyperaccumulator Pteris vittata and the nonhyperaccumulator Pteris tremula. , 2004, The New phytologist.
[110] D. Salt,et al. Arsenic Hyperaccumulation in Gametophytes of Pteris vittata. A New Model System for Analysis of Arsenic Hyperaccumulation1 , 2004, Plant Physiology.
[111] S. Hirano,et al. The accumulation and toxicity of methylated arsenicals in endothelial cells: important roles of thiol compounds. , 2004, Toxicology and applied pharmacology.
[112] L. Ma,et al. Effects of arsenic species and phosphorus on arsenic absorption, arsenate reduction and thiol formation in excised parts of Pteris vittata L. , 2004 .
[113] C. Tu,et al. Antioxidative responses to arsenic in the arsenic-hyperaccumulator Chinese brake fern (Pteris vittata L.). , 2004, Environmental pollution.
[114] L. Ma,et al. Effects of compost and phosphate amendments on arsenic mobility in soils and arsenic uptake by the hyperaccumulator, Pteris vittata L. , 2003, Environmental pollution.
[115] M. Macnair,et al. Does zinc protect the zinc hyperaccumulator Arabidopsis halleri from herbivory by snails? , 2003, The New phytologist.
[116] S. McGrath,et al. The role of phytochelatins in arsenic tolerance in the hyperaccumulator Pteris vittata. , 2003, The New phytologist.
[117] A. K. Chakraborti,et al. Arsenic groundwater contamination in Middle Ganga Plain, Bihar, India: a future danger? , 2003, Environmental health perspectives.
[118] Enzo Lombi,et al. Arsenic distribution and speciation in the fronds of the hyperaccumulator Pteris vittata. , 2002, The New phytologist.
[119] Andrea Raab,et al. Mechanisms of Arsenic Hyperaccumulation in Pteris vittata. Uptake Kinetics, Interactions with Phosphate, and Arsenic Speciation1 , 2002, Plant Physiology.
[120] S. McGrath,et al. Arsenic hyperaccumulation by different fern species , 2002 .
[121] P. Visoottiviseth,et al. The potential of Thai indigenous plant species for the phytoremediation of arsenic contaminated land. , 2002, Environmental pollution.
[122] P. Smedley,et al. A review of the source, behaviour and distribution of arsenic in natural waters , 2002 .
[123] C. Tu,et al. Effects of arsenic concentrations and forms on arsenic uptake by the hyperaccumulator ladder brake. , 2002, Journal of environmental quality.
[124] L. Damelin,et al. Metal-induced hormesis requires cPKC dependent glucose transport and lowered respiration , 2001, Human & experimental toxicology.
[125] Yong Cai,et al. A fern that hyperaccumulates arsenic , 2001, Nature.
[126] B. Rosen,et al. Saccharomyces cerevisiae ACR2 gene encodes an arsenate reductase. , 1998, FEMS microbiology letters.
[127] Y. Dragan,et al. Implications of hormesis on the bioassay and hazard assessment of chemical carcinogens , 1998, Human & experimental toxicology.
[128] R. Wysocki,et al. The Saccharomyces cerevisiae ACR3 Gene Encodes a Putative Membrane Protein Involved in Arsenite Transport* , 1997, The Journal of Biological Chemistry.
[129] A. Goffeau,et al. Isolation of Three Contiguous Genes, ACR1, ACR2 and ACR3, Involved in Resistance to Arsenic Compounds in the Yeast Saccharomyces cerevisiae , 1997, Yeast.
[130] A. Stebbing,et al. Hormesis--the stimulation of growth by low levels of inhibitors. , 1982, The Science of the total environment.
[131] Y. Ok,et al. Arsenic removal by perilla leaf biochar in aqueous solutions and groundwater: An integrated spectroscopic and microscopic examination. , 2018, Environmental pollution.
[132] D. Salt,et al. Dissecting the components controlling root-to-shoot arsenic translocation in Arabidopsis thaliana. , 2018, The New phytologist.
[133] Tongbin Chen,et al. Phytoextraction of arsenic-contaminated soil with Pteris vittata in Henan Province, China: comprehensive evaluation of remediation efficiency correcting for atmospheric depositions , 2016, Environmental Science and Pollution Research.
[134] S. F. Ditusa,et al. A member of the Phosphate transporter 1 (Pht1) family from the arsenic-hyperaccumulating fern Pteris vittata is a high-affinity arsenate transporter. , 2016, The New phytologist.
[135] Yong-guan Zhu,et al. An aquaporin PvTIP4;1 from Pteris vittata may mediate arsenite uptake. , 2016, The New phytologist.
[136] P. Trivedi,et al. Omics and biotechnology of arsenic stress and detoxification in plants: current updates and prospective. , 2015, Environment international.
[137] Xu-yang Lu,et al. Effects of arsenic on seed germination and physiological activities of wheat seedlings. , 2007, Journal of environmental sciences.
[138] M. Lasat,et al. Phytoextraction of toxic metals: a review of biological mechanisms. , 2002, Journal of environmental quality.
[139] S. Martens,et al. The raison d'etre for metal hyperaccumulation by plants , 1992 .