[1] |
Jiang P, Hou Z G, Bolin J M, et al.RNA-Seq of human neural progenitor cells exposed to lead (Pb) reveals transcriptome dynamics, splicing alterations and disease risk associations[J].Toxicological Sciences, 2017, 159(1):251-265. doi: 10.1093/toxsci/kfx129
CrossRef Google Scholar
|
[2] |
Moynihan M, Peterson K E, Cantoral A, et al.Dietary predictors of urinary cadmium among pregnant women and children[J].Science of the Total Environment, 2017, 575:1255-1262. doi: 10.1016/j.scitotenv.2016.09.204
CrossRef Google Scholar
|
[3] |
Lintern M, Anand R, Ryan C, et al.Natural gold particles in Eucalyptus leaves and their relevance to exploration for buried gold deposits[J].Nature Communications, 2013, 4(4):2614.
Google Scholar
|
[4] |
Vardanyan N, Sevoyan G, Navasardyan T, et al.Recovery of valuable metals from polymetallic mine tailings by natural microbial consortium[J].Environmental Technology, 2019, 40(26):3467-3472. doi: 10.1080/09593330.2018.1478454
CrossRef Google Scholar
|
[5] |
袁玲, 孟扬, 左玉明.黄金矿山尾矿资源回收和综合利用[J].黄金, 2010, 31(2):52-56.
Google Scholar
Yuan L, Meng Y, Zuo Y M.Recovery and comprehensive utilization of gold tailings[J].Gold, 2010, 31(2):52-56.
Google Scholar
|
[6] |
Baker A J M.Accumulators and excluders-strategies in the response of plants to heavy metals[J].Journal of Plant Nutrition, 1981, 3(1-4):643-654. doi: 10.1080/01904168109362867
CrossRef Google Scholar
|
[7] |
Krämer U.Metal hyperaccumulation in plants[J].Annual Review of Plant Biology, 2010, 61:517-534. doi: 10.1146/annurev-arplant-042809-112156
CrossRef Google Scholar
|
[8] |
Kumar S S, Malyan S K, Kadier A, et al.Phytoremediation and rhizoremediation: Uptake, mobilization and sequestration of heavy metals by plants[M]//Singh D P, Singh H B, Prabha R.Plant-microbe interactions in agro-ecological perspectives: Volume 2: Microbial interactions and agro-ecological impacts.Singapore: Springer, 2017: 367-394.
Google Scholar
|
[9] |
Sheoran V, Sheoran A S, Poonia P.Phytomining of gold:A review[J].Journal of Geochemical Exploration, 2013, 128:42-50. doi: 10.1016/j.gexplo.2013.01.008
CrossRef Google Scholar
|
[10] |
Lintern M J, Anand R R.Dispersion of gold and other metals by trees, gravels and soils near Boddington gold deposit, western Australia[J].Journal of Geochemical Exploration, 2017, 181:10-21. doi: 10.1016/j.gexplo.2017.06.016
CrossRef Google Scholar
|
[11] |
Harguinteguy C A, Cofré M N, Cirelli A F, et al.The macrophytes Potamogeton pusillus L. and Myriophyllum aquaticum (Vell.) Verdc. as potential bioindicators of a river contaminated by heavy metals[J].Microchemical Journal, 2016, 124:228-234. doi: 10.1016/j.microc.2015.08.014
CrossRef Google Scholar
|
[12] |
Hakeem K, Rehman K.Crop production and global environmental issues[M]//Shahid M, Khalid S, Abbas G, et al.Heavy metal stress and crop productivity.Cham: Springer, 2015.
Google Scholar
|
[13] |
Tripathi D K, Singh S, Singh S, et al.Micronutrients and their diverse role in agricultural crops:Advances and future prospective[J].Acta Physiologiae Plantarum, 2015, 37:139. doi: 10.1007/s11738-015-1870-3
CrossRef Google Scholar
|
[14] |
Kopittke P M, Blamey F P C, Mckenna B A, et al.Toxicity of metals to roots of cowpea in relation to their binding strength[J].Environmental Toxicology and Chemistry, 2011, 30(8):1827-1833. doi: 10.1002/etc.557
CrossRef Google Scholar
|
[15] |
Gupta D, Corpas F, Palma J.Heavy metal stress in plants[M]//Gupta D K, Vandenhove H, Inouhe M.Role of phytochelatins in heavy metal stress and detoxification mechanisms in plants.Heidelberg: Springer, 2013.
Google Scholar
|
[16] |
Whitacre D.Reviews of environmental contamination and toxicology volume 232[M]//Shahid M, Pourrut B, Dumat C, et al.Heavy-metal-induced reactive oxygen species: Phytotoxicity and physicochemical changes in plants.Cham: Springer, 2014.
Google Scholar
|
[17] |
Galloa M, Morseb D, Hollnagel H C, et al.Oxidative stress and toxicology of Cu2+ based on surface areas in mixed cultures of green alga and cyanobacteria:the pivotal role of H2O2[J].Aquatic Toxicology, 2020, 222:105450. doi: 10.1016/j.aquatox.2020.105450
CrossRef Google Scholar
|
[18] |
Jomova K, Valko M.Advances in metal-induced oxidative stress and human disease[J].Toxicology, 2011, 283(2-3):65-87. doi: 10.1016/j.tox.2011.03.001
CrossRef Google Scholar
|
[19] |
Thounaojam T C, Panda P, Mazumdar P, et al.Excess copper induced oxidative stress and response of antioxidants in rice[J].Plant Physiology and Biochemistry, 2012, 53:33-39. doi: 10.1016/j.plaphy.2012.01.006
CrossRef Google Scholar
|
[20] |
Küpper H, Andresen E.Mechanisms of metal toxicity in plants[J].Metallomics, 2016, 8(3):269-285. doi: 10.1039/C5MT00244C
CrossRef Google Scholar
|
[21] |
Santos E F, Santini J M K, Paixao A P, et al.Physiologica l highlights of manganese toxicity symptoms in soybean plants:Mn toxicity responses[J].Plant Physiology and Biochemistry, 2017, 113:6-19. doi: 10.1016/j.plaphy.2017.01.022
CrossRef Google Scholar
|
[22] |
Tavanti R F R, Queiroz G D, Silva A C D, et al.Changes in photosynthesis and antioxidant metabolism of cotton (Gossypium hirsutum L.) plants in response to manganese stress[J].Archives of Agronomy and Soil Science, 2019.
Google Scholar
|
[23] |
Yu Y, Fu P N, Huang Q P, et al.Accumulation, sub-cellular distribution, and oxidative stress of cadmium in Brassica chinensis supplied with selenite and selenate at different growth stages[J].Chemosphere, 2019, 216:331-340. doi: 10.1016/j.chemosphere.2018.10.138
CrossRef Google Scholar
|
[24] |
Hoewyk D V.A tale of two toxicities:Malformed selenoproteins and oxidative stress both contribute to selenium stress in plants[J].Annals of Botany, 2013, 112(6):965-972. doi: 10.1093/aob/mct163
CrossRef Google Scholar
|
[25] |
Kaur M, Sharma S.Influence of selenite and selenate on growth, leaf physiology and antioxidant defense system in wheat (Triticum aestivum L.)[J].Journal of the Science of Food and Agriculture, 2018, 98(15):5700-5710. doi: 10.1002/jsfa.9117
CrossRef Google Scholar
|
[26] |
Knauert S, Knauer K.The role of reactive oxygen species in copper toxicity to two freshwater green algae[J].Journal of Phycology, 2010, 44(2):311-309.
Google Scholar
|
[27] |
Opdenakker K, Remans T, Keunen T, et al.Exposure of Arabidopsis thaliana to Cd or Cu excess leads to oxidative stress mediated alterations in MAPKinase transcript levels[J].Environmental and Experimental Botany, 2012, 83:53-61. doi: 10.1016/j.envexpbot.2012.04.003
CrossRef Google Scholar
|
[28] |
Kolbert Z, Lehotai N, Molnár A, et al."The roots" of selenium toxicity:A new concept[J].Plant Signaling & Behavior, 2016, 11(10):1241935.
Google Scholar
|
[29] |
Pas L V D, Robert A I.Towards an understanding of the molecular basis of nickel hyperaccumulation in plants[J].Plants, 2019, 8:11. doi: 10.3390/plants8010011
CrossRef Google Scholar
|
[30] |
Guo L, Ding Y Q, Xu Y L, et al.Responses of Landoltia punctata to cobalt and nickel:Removal, growth, photosynthesis, antioxidant system and starch metabolism[J].Aquatic Toxicology, 2017, 190:87-93. doi: 10.1016/j.aquatox.2017.06.024
CrossRef Google Scholar
|
[31] |
Tan L L, Xue X G, Du J, et al.Probing the molecular toxic mechanism of lead(Ⅱ) ions with glutathione peroxidase 6 from Arabidopsis thaliana[J].Spectrochimica Acta Part A:Molecular and Biomolecular Spectroscopy, 2020, 226:117597. doi: 10.1016/j.saa.2019.117597
CrossRef Google Scholar
|
[32] |
Abbas G, Murtaza B, Bibi I, et al.Arsenic uptake, toxicity, detoxification, and speciation in plants:Physiological, biochemical, and molecular aspects[J].International Journal of Environmental Research and Public Health, 2018, 15:59. doi: 10.3390/ijerph15010059
CrossRef Google Scholar
|
[33] |
Kehrer J P.The Haber-Weiss reaction and mechanisms of toxicity[J].Toxicology, 2000, 149(1):43-50.
Google Scholar
|
[34] |
Kumar A, Prasad M N V.Plant-lead interactions:transport, toxicity, tolerance, and detoxification mechanisms[J].Ecotoxicology and Environmental Safety, 2018, 166:401-418. doi: 10.1016/j.ecoenv.2018.09.113
CrossRef Google Scholar
|
[35] |
Ugya A Y, Imam T S, Li A F, et al.Antioxidant response mechanism of freshwater microalgae species to reactive oxygen species production:A mini review[J].Chemistry and Ecology, 2020, 36(2):174-193.
Google Scholar
|
[36] |
Ghosh P, Rathinasabapathi B, Lena Q M. Phosphorus solubilization and plant growth enhancement by arsenic-resistant bacteria[J].Chemosphere, 2015, 134:1-6. doi: 10.1016/j.chemosphere.2015.03.048
CrossRef Google Scholar
|
[37] |
Kumar S, Dubey R S, Tripathi R D, et al.Omics and biotechnology of arsenic stress and detoxification in plants:Current updates and prospective[J].Environment International, 2015, 74:221-230. doi: 10.1016/j.envint.2014.10.019
CrossRef Google Scholar
|
[38] |
Tripathi R D, Tripathi P, Dwivedi S, et al.Arsenomics:Omics of arsenic metabolism in plants[J].Frontiers in Physiology, 2012, 3:275.
Google Scholar
|
[39] |
Swaran J S F.Arsenic-induced oxidative stress and its reversibility[J].Free Radical Biology & Medicine, 2011, 51(2):257-281.
Google Scholar
|
[40] |
Sharma I.Arsenic induced oxidative stress in plants[J].Biologia, 2012, 67(3):447-453.
Google Scholar
|
[41] |
Malik J A, Goel S, Kaur N, et al.Selenium antagonises the toxic effects of arsenic on mungbean (Phaseolus aureus Roxb.) plants by restricting its uptake and enhancing the antioxidative and detoxification mechanisms[J].Environmental and Experimental Botany, 2012, 77:242-248. doi: 10.1016/j.envexpbot.2011.12.001
CrossRef Google Scholar
|
[42] |
Tamás L, Zelinová V.Mitochondrial complex Ⅱ-deri-ved superoxide is the primary source of mercury toxicity in barley root tip[J].Journal of Plant Physiology, 2017, 209:68-75. doi: 10.1016/j.jplph.2016.10.014
CrossRef Google Scholar
|
[43] |
Chen Q, Zhang Z Y, Liu Y Y, et al.Hemin-mediated alleviation of zinc, lead and chromium toxicity is associated with elevated photosynthesis, antioxidative capacity; suppressed metal uptake and oxidative stress in rice seedlings[J].Plant Growth Regulation, 2017, 81(2):253-264. doi: 10.1007/s10725-016-0202-y
CrossRef Google Scholar
|
[44] |
Gupta D K, Pena B, Romero P M C, et al.NADPH oxidases differentially regulate ROS metabolism and nutrient uptake under cadmium toxicity[J].Plant, Cell & Environment, 2017, 40(4):509-526.
Google Scholar
|
[45] |
Zhang H H, Li X, Xu Z S, et al.Toxic effects of heavy metals Pb and Cd on mulberry (Morus alba L.) seedling leaves:Photosynthetic function and reactive oxygen species (ROS) metabolism responses[J].Ecotoxicology and Environmental Safety, 2020, 195:110469. doi: 10.1016/j.ecoenv.2020.110469
CrossRef Google Scholar
|
[46] |
Mitch M L.Phytoextraction of toxic metals:A review of biological mechanisms[J].Journal of Environmental Quality, 2002, 31(1):109-120.
Google Scholar
|
[47] |
Fayigaa A O, Maa L Q, Cao X D, et al.Effects of heavy metals on growth and arsenic accumulation in the arsenic hyperaccumulator Pteris vittata L[J].Environmental Pollution, 2004, 132(2):289-296. doi: 10.1016/j.envpol.2004.04.020
CrossRef Google Scholar
|
[48] |
Rascio N, Izzo F N.Heavy metal hyperaccumulating plants:How and why do they do it? and what makes them so interesting?[J].Plant Science, 2011, 180:169-181. doi: 10.1016/j.plantsci.2010.08.016
CrossRef Google Scholar
|
[49] |
Freeman J L, Quinn C F, Lindblom S D, et al.Selenium protects the hyperaccumulator Stanleya pinnata against black-tailed prairie dog herbivory in native seleniferous habitats[J].American Journal of Botany, 2009, 96(6):1075-1085. doi: 10.3732/ajb.0800287
CrossRef Google Scholar
|
[50] |
Sheoran V, Sheoran A S, Poonia P.Phytomining:A review[J].Minerals Engineering, 2009, 22(12):1007-1019. doi: 10.1016/j.mineng.2009.04.001
CrossRef Google Scholar
|
[51] |
Li T Q, Tao Q, Liang C F, et al.Complexation with dissolved organic matter and mobility control of heavy metals in the rhizosphere of hyperaccumulator Sedum alfredii[J].Environmental Pollution, 2013, 182:248-255. doi: 10.1016/j.envpol.2013.07.025
CrossRef Google Scholar
|
[52] |
Salinitroa M, Entb A N D, Tognacchini A, et al.Stress responses and nickel and zinc accumulation in different accessions of Stellaria media (L.) Vill.in response to solution pH variation in hydroponic culture[J].Plant Physiology and Biochemistry, 2020, 148:133-141. doi: 10.1016/j.plaphy.2020.01.012
CrossRef Google Scholar
|
[53] |
Peng C, Xu C, Liu Q, et al.Fate and transformation of CuO nanoparticles in the soil-rice system during the life cycle of rice plants[J].Environmental Science & Technology, 2017, 51(9):4907-4917.
Google Scholar
|
[54] |
Liu X, Fu J W, Guan D X, et al.Arsenic induced phytate exudation, and promoted FeAsO4 dissolution and plant growth in As-hyperaccumulator Pteris vittata[J].Environmental Science & Technology, 2016, 50(17):9070-9077.
Google Scholar
|
[55] |
Ge Y, Priester J H, Werfhorst L C V D, et al.Soybean plants modify metal oxide nanoparticle effects on soil bacterial communities[J].Environmental Science & Technology, 2014, 48(22):13489-13496.
Google Scholar
|
[56] |
Ali H, Khan E, Sajad M A.Phytoremediation of heavy metals-Concepts and applications[J].Chemosphere, 2013, 91(7):869-881. doi: 10.1016/j.chemosphere.2013.01.075
CrossRef Google Scholar
|
[57] |
Mahrousa N N, Columbusa M P, Southam G, et al.Changes in microbial community structure and increased metal bioavailability in a metal-contaminated soil and in the rhizosphere of corn (Zea mays)[J].Rhizosphere, 2019, 11:100169. doi: 10.1016/j.rhisph.2019.100169
CrossRef Google Scholar
|
[58] |
曾远, 罗立强.土壤中特异性微生物与重金属相互作用机制与应用研究进展[J].岩矿测试, 2017, 36(3):209-221.
Google Scholar
Zeng Y, Luo L Q.Research progress on the application and interaction mechanism between specific microorganisms and heavy metals in soil[J].Rock and Mineral Analysis, 2017, 36(3):209-221.
Google Scholar
|
[59] |
He H D, Ye Z H, Yang D J, et al.Characterization of endophytic Rahnella sp.JN6 from Polygonum pubescens and its potential in promoting growth and Cd, Pb, Zn uptake by Brassica napus[J].Chemosphere, 2013, 90(6):1960-1965. doi: 10.1016/j.chemosphere.2012.10.057
CrossRef Google Scholar
|
[60] |
He B Y, Yu D P, Chen Y, et al.Use of low-calcium cultivars to reduce cadmium uptake and accumulation in edible amaranth (Amaranthus mangostanus L.)[J].Chemosphere, 2017, 171:588-594.
Google Scholar
|
[61] |
Wu Z C, Zhao X H, Sun X C, et al.Xylem transport and gene expression play decisive roles in cadmium accumulation in shoots of two oilseed rape cultivars (Brassica napus)[J].Chemosphere, 2015, 119:1217-1223. doi: 10.1016/j.chemosphere.2014.09.099
CrossRef Google Scholar
|
[62] |
Tao Q, Jupa R, Luo J P, et al.The apoplasmic pathway via the root apex and lateral roots contributes to Cd hyperaccumulation in the hyperaccumulator Sedum alfredii[J].Journal of Experimental Botany, 2017, 68(3):739-751.
Google Scholar
|
[63] |
Hendel A M, Zubko M, Karcz J, et al.Fate of neutral-charged gold nanoparticles in the roots of the Hordeum vulgare L.cultivar Karat[J].Scientific Reports, 2017, 7(1):3014. doi: 10.1038/s41598-017-02965-w
CrossRef Google Scholar
|
[64] |
Attwood T S, Unrine J M, Stone J W, et al.Uptake, distribution and toxicity of gold nanoparticles in tobacco (Nicotiana xanthi) seedlings[J].Nanotoxicology, 2012, 6(4):353-360. doi: 10.3109/17435390.2011.579631
CrossRef Google Scholar
|
[65] |
Solis D F A, Gonzalez C M C, Carrillo G R, et al. Accumulation and localization of cadmium in Echinochloa polystachya grown within a hydroponic system[J].Journal of Hazardous Materials, 2007, 141(3):630-636. doi: 10.1016/j.jhazmat.2006.07.014
CrossRef Google Scholar
|
[66] |
Bao T, Sun T H, Sun L.Low molecular weight organic acids in root exudates and cadmium accumulation in cadmium hyperaccumulator Solanum nigrum L.and nonhyperaccumulator Solanum lycopersicum L.[J].African Journal of Biotechnology, 2011, 10(75):17180-17185.
Google Scholar
|
[67] |
Lu L L, Tian S K, Zhang J, et al.Efficient xylem transport and phloem remobilization of Zn in the hyperaccumulator plant species Sedum alfredii[J].New Phytologist, 2013, 198(3):721-731. doi: 10.1111/nph.12168
CrossRef Google Scholar
|
[68] |
Kozhevnikova A D, Seregin I V, Erlikh N T, et al. Histidine-mediated xylem loading of zinc is a species-wide character in Noccaea caerulescens[J].New Phytologist, 2014, 203(2):508-519. doi: 10.1111/nph.12816
CrossRef Google Scholar
|
[69] |
Yoneyama T, Ishikawa S, Fujimaki S.Route and regulation of zinc, cadmium, and iron transport in rice plants (Oryza sativa L.) during vegetative growth and grain filling:Metal transporters, metal speciation, grain Cd reduction and Zn and Fe biofortification[J].International Journal of Molecular Sciences, 2015, 16(8):19111-19129. doi: 10.3390/ijms160819111
CrossRef Google Scholar
|
[70] |
Gao J, Sun L, Yang X E, et al.Transcriptomic analysis of cadmium stress response in the heavy metal hyperaccumulator Sedum alfredii Hance[J].Plos One, 2013, 8(6):e64643. doi: 10.1371/journal.pone.0064643
CrossRef Google Scholar
|
[71] |
Palusińska M, Barabasz A, KozakK, et al.Zn/Cd status-dependent accumulation of Zn and Cd in root parts in tobacco is accompanied by specific expression of ZIP genes[J].BMC Plant Biology, 2020, 20(1):37.
Google Scholar
|
[72] |
Morel M, Crouzet J, Gravot A, et al.AtHMA3, a P1B-ATPase allowing Cd/Zn/Co/Pb vacuolar storage in Arabidopsis[J].Plant Physiology, 2009, 149(2):894-904. doi: 10.1104/pp.108.130294
CrossRef Google Scholar
|
[73] |
Ueno D, Yamaji N, Kono I, et al.Gene limiting cadmium accumulation in rice[J].Proceedings of the National Academy of Sciences, 2010, 107(38):16500-16505. doi: 10.1073/pnas.1005396107
CrossRef Google Scholar
|
[74] |
Kutrowska A, Szelag M.Low-molecular weight organic acids and peptides involved in the long-distance transport of trace metals[J].Acta Physiologiae Plantarum, 2014, 36(8):1957-1968. doi: 10.1007/s11738-014-1576-y
CrossRef Google Scholar
|
[75] |
Deng T H B, Tang Y T, Ent A V D, et al.Nickel translocation via the phloem in the hyperaccumulator Noccaea caerulescens (Brassicaceae)[J].Plant and Soil, 2016, 404(1):35-45.
Google Scholar
|
[76] |
Dan Y B, Zhang W L, Xue R M, et al.Characterization of gold nanoparticle uptake by tomato plants using enzymatic extraction followed by single-particle inductively coupled plasma-mass spectrometry analysis[J].Environmental Science & Technology, 2017, 49(5):3007-3014.
Google Scholar
|
[77] |
Feichtmeier N S, Walther P, Leopold K.Uptake, effects, and regeneration of barley plants exposed to gold nanoparticles[J].Environmental Science & Pollution Research International, 2015, 22(11):8549-8558.
Google Scholar
|
[78] |
Tao Q, Jupa R, Liu Y K, et al.Abscisic acid-mediated modifications of radial apoplastic transport pathway play a key role in cadmium uptake in hyperaccumulator Sedum alfredii[J].Plant Cell And Environment, 2019, 42(5):1425-1440. doi: 10.1111/pce.13506
CrossRef Google Scholar
|
[79] |
Li T Q, Tao Q, Shohag M J I, et al.Root cell wall polysaccharides are involved in cadmium hyperaccumulation in Sedum alfredii[J].Plant and Soil, 2015, 389:387-399. doi: 10.1007/s11104-014-2367-3
CrossRef Google Scholar
|
[80] |
Chi K Y, Zou R, Wang L, et al.Cellular distribution of cadmium in two amaranth (Amaranthus mangostanus L.) cultivars differing in cadmium accumulation[J].Environmental Science and Pollution Research, 2019, 26:22147-22158. doi: 10.1007/s11356-019-05390-w
CrossRef Google Scholar
|
[81] |
Mori S, Uraguchi S, Ishikawa S, et al.Xylem loading process is a critical factor in determining Cd accumulation in the shoots of Solanum melongena and Solanum torvum[J].Environmental and Experimental Botany, 2009, 67:127-132. doi: 10.1016/j.envexpbot.2009.05.006
CrossRef Google Scholar
|
[82] |
Hu P J, Wang Y D, Przybyłowicz W J, et al.Elemental distribution by cryo-micro-PIXE in the zinc and cadmium hyperaccumulator Sedum plumbizincicola grown naturally[J].Plant and Soil, 2015, 388:267-282. doi: 10.1007/s11104-014-2321-4
CrossRef Google Scholar
|
[83] |
Wang W J, Zhang M Z, Liu J.Subcellular distribution and chemical forms of Cd in Bougainvillea spectabilis Willd. as an ornamental phytostabilizer:An integrated consideration[J].International Journal of Phytoremediation, 2018, 20(11):1087-1095. doi: 10.1080/15226514.2017.1365335
CrossRef Google Scholar
|
[84] |
Rozas M M, Madejon E, Madejon P.Effect of heavy metals and organic matter on root exudates (low molecular weight organic acids) of herbaceous species:An assessment in sand and soil conditions under different levels of contamination[J].Environmental Pollution, 2016, 216:273-281. doi: 10.1016/j.envpol.2016.05.080
CrossRef Google Scholar
|
[85] |
Hou X L, Han H, Cai L P, et al.Pb stress effects on leaf chlorophyll fluorescence, antioxidative enzyme activities, and organic acid contents of Pogonatherum crinitum seedlings[J].Flora, 2018, 240:82-88. doi: 10.1016/j.flora.2018.01.006
CrossRef Google Scholar
|
[86] |
Sghaier O M, Merono R M, Zapico E F, et al.Synthesis of a new Cd(Ⅱ)-Ni(Ⅱ) hetero-metallic coordination polymer base on citric acid ligand.X-ray structure, thermal stability, XPS and fluorescence studies[J].Journal of Molecular Structure, 2016, 1105:105-111. doi: 10.1016/j.molstruc.2015.10.028
CrossRef Google Scholar
|
[87] |
Zhang Y L, He S R, Zhang Z, et al.Glycine transforma-tioninduces repartition of cadmium and lead in soil constituents[J].Environmental Pollution, 2019, 251:930-937. doi: 10.1016/j.envpol.2019.04.099
CrossRef Google Scholar
|
[88] |
Chen S, Lin R Y, Lu H L, et al.Effects of phenolic acids on free radical scavenging and heavy metal bioavailability in kandelia obovata under cadmium and zinc stress[J].Chemosphere, 2020, 249:126341. doi: 10.1016/j.chemosphere.2020.126341
CrossRef Google Scholar
|
[89] |
Xin J P, Zhang Y, Tian R N.Tolerance mechanism of Triarrhena saccharifiora (Maxim.) Nakai.seedlings to lead and cadmium:Translocation, subcellular distribution, chemical forms and variations in leaf ultrastructure[J].Ecotoxicology and Environmental Safety, 2018, 165:611-621. doi: 10.1016/j.ecoenv.2018.09.022
CrossRef Google Scholar
|
[90] |
Adediran G A, Ngwenya B T, Mosselmans J F W, et al.Mechanisms behind bacteria induced plant growth promotion and Zn accumulation in Brassica juncea[J].Journal of Hazardous Materials, 2015, 283:490-499. doi: 10.1016/j.jhazmat.2014.09.064
CrossRef Google Scholar
|
[91] |
Sun J L, Luo L Q.Subcellular distribution and chemical forms of Pb in corn:strategies underlying tolerance in Pb stress[J].Journal of Agricultural and Food Chemistry, 2018, 66(26):6675-6682. doi: 10.1021/acs.jafc.7b03605
CrossRef Google Scholar
|
[92] |
Ameen N Z, Amjad M, Murtaza B, et al.Biogeochemical behavior of nickel under different abiotic stresses:Toxicity and detoxification mechanisms in plants[J].Environmental Science and Pollution Research, 2019, 26(11):10496-10514. doi: 10.1007/s11356-019-04540-4
CrossRef Google Scholar
|
[93] |
Sunitha M S, Prashant S, Kumar S A, et al.Cellular and molecular mechanisms of heavy metal tolerance in plants:A brief overview of transgenic plants over expressing phytochelatins synthase and metallothionein genes[J].Plant Cell Biotechnology and Molecular Biology, 2013, 13(3):99-104.
Google Scholar
|
[94] |
Helaoui S, Boughattas I, Hattab S, et al.Physiological, biochemical and transcriptomic responses of Medicago sativa to nickel exposure[J].Chemosphere, 2020, 249:126121. doi: 10.1016/j.chemosphere.2020.126121
CrossRef Google Scholar
|
[95] |
Chaudhary K, Agarwal S, Khan S.Role of phytochelatins (PCs), metallothioneins (MTs), and heavy metal atpase (HMA) genes in heavy metal tolerance[M]//Prasad R.Mycoremediation and environmental sustainability: Volume 2.Cham: Springer International Publishing, 2018: 39-60.
Google Scholar
|
[96] |
Navarrete A, González A, Gómez M, et al.Copper excess detoxification is mediated by a coordinated and complementary induction of glutathione, phytochelatins and metallothioneins in the green seaweed Ulva compressa[J].Plant Physiology and Biochemistry, 2019, 135:423-431. doi: 10.1016/j.plaphy.2018.11.019
CrossRef Google Scholar
|
[97] |
Cao Z Z, Qin M L, Lin X Y, et al.Sulfur supply reduces cadmium uptake and translocation in rice grains (Oryza sativa L.) by enhancing iron plaque formation, cadmium chelation and vacuolar sequestration[J].Environmental Pollution, 2018, 238:76-84. doi: 10.1016/j.envpol.2018.02.083
CrossRef Google Scholar
|
[98] |
Bhargava A, Carmona F F, Bhargava M, et al.Appro-aches for enhanced phytoextraction of heavy metals[J].Journal of Environmental Management, 2012, 105:103-120.
Google Scholar
|
[99] |
Sharma S S, Dietz K J, Mimura T.Vacuolar compart-mentalization as indispensable component of heavy metal detoxification in plants[J].Plant, Cell & Environment, 2016, 39:1112-1126.
Google Scholar
|
[100] |
Liu H, Zhao H X, Wu L H, et al.Heavy metal ATPase 3(HMA3) confers cadmium hypertolerance on the cadmium/zinc hyperaccumulator Sedum plumbizincicola[J].New Phytologist, 2017, 215(2):687-698. doi: 10.1111/nph.14622
CrossRef Google Scholar
|
[101] |
Song W Y, Park J, Cózat D G M, et al.Arsenic tolerance in arabidopsis is mediated by two ABCC-type phytochelatin transporters[J].Proceedings of the National Academy of Sciences of the United States of America, 2010, 107(49):21187-21192. doi: 10.1073/pnas.1013964107
CrossRef Google Scholar
|
[102] |
Park J, Song W Y, Ko D, et al.The phytochelatin transporters AtABCC1 and AtABCC2 mediate tolerance to cadmium and mercury[J].The Plant Journal, 2012, 69(2):278-288. doi: 10.1111/j.1365-313X.2011.04789.x
CrossRef Google Scholar
|
[103] |
Zhang W W, Hu Y J, Cao Y R, et al.Tolerance of lead by the fruiting body of Oudemansiella radicata[J].Chemosphere, 2012, 88(4):467-475. doi: 10.1016/j.chemosphere.2012.02.079
CrossRef Google Scholar
|
[104] |
Srivastava R K, Pandey P, Rajpoot R, et al.Cadmium and lead interactive effects on oxidative stress and antioxidative responses in rice seedlings[J].Protoplasma, 2014, 251(5):1047-1065. doi: 10.1007/s00709-014-0614-3
CrossRef Google Scholar
|
[105] |
Tang K, Zhan J C, Yang H R, et al.Changes of resveratrol and antioxidant enzymes during UV-induced plant defense response in peanut seedlings[J].Journal of Plant Physiology, 2010, 167(2):95-102.
Google Scholar
|
[106] |
Xu X H, Yang B S, Qin G H, et al.Growth, accumulation, and antioxidative responses of two Salix genotypes exposed to cadmium and lead in hydroponic culture[J].Environmental Science and Pollution Research, 2019, 26:19770-19784. doi: 10.1007/s11356-019-05331-7
CrossRef Google Scholar
|
[107] |
Shahid M, Dumat C, Pourrut B, et al.Influence of EDTA and citric acid on lead-induced oxidative stress to Vicia faba roots[J].Journal of Soils and Sediments, 2014, 14:835-843. doi: 10.1007/s11368-013-0724-0
CrossRef Google Scholar
|
[108] |
Cherif J, Mediouni C, Ammar W B, et al.Interactions of zinc and cadmium toxicity in their effects on growth and in antioxidative systems in tomato plants (Solarium lycopersicum)[J].Journal of Environmental Sciences, 2011, 23(5):837-844. doi: 10.1016/S1001-0742(10)60415-9
CrossRef Google Scholar
|
[109] |
Yan Y Y, Yang B, Lan X Y, et al.Cadmium accumulation capacity and resistance strategies of a cadmium-hypertolerant fern-Microsorum fortunei[J].Science of the Total Environment, 2019, 649:1209-1223. doi: 10.1016/j.scitotenv.2018.08.281
CrossRef Google Scholar
|
[110] |
黑泽文, 向慧敏, 章家恩, 等.水合欢对重金属Cd、Pb的耐受性及吸收富集特性[J].生态毒理学报, 2019, 14(3):286-296.
Google Scholar
Hei Z W, Xiang H M, Zhang Z E, et al.Tolerance and accumulation ability of Neptunia olerace to Cd and Pb stress in soil[J].Asian Journal of Ecotoxicology, 2019, 14(3):286-296.
Google Scholar
|
[111] |
Guo H, Jiang J W, Gao J Q, et al.Evaluation of cadmium hyperaccumulation and tolerance potential of Myriophyllum aquaticum[J].Ecotoxicology and Environmental Safety, 2020, 195:110502. doi: 10.1016/j.ecoenv.2020.110502
CrossRef Google Scholar
|
[112] |
Małecka A, Konkolewska A, Han A, et al.Insight into the phytoremediation capability of Brassica juncea (v.Malopolska):Metal accumulation and antioxidant enzyme activity[J].International Journal of Molecular Sciences, 2019, 20:4355. doi: 10.3390/ijms20184355
CrossRef Google Scholar
|
[113] |
Chandrasekhara C, Ray J G.Lead accumulation, growth responses and biochemical changes of three plant species exposed to soil amended with different concentrations of lead nitrate[J].Ecotoxicology and Environmental Safety, 2019, 171:26-36. doi: 10.1016/j.ecoenv.2018.12.058
CrossRef Google Scholar
|
[114] |
Zhang C L, Chen Y Q, Xu W H, et al.Resistance ofAlfalfa and Indian mustard to Cd and the correlation of plant Cd uptake and soil Cd form[J].Environmental Science and Pollution Research, 2019, 26:13804-13811. doi: 10.1007/s11356-018-3162-0
CrossRef Google Scholar
|
[115] |
Reeves R D, Baker A J M, Tanguy Jaffre, et al.A global database for plants that hyperaccumulate metal and metalloid trace elements[J].New Phytologist, 2018, 218:407-411. doi: 10.1111/nph.14907
CrossRef Google Scholar
|
[116] |
Rosenkranz T, Hipfinger C, Ridard C, et al.A nickel phytomining field trial using Odontarrhena chalcidica and Noccaea goesingensis on an Austrian serpentine soil[J].Journal of Environmental Management, 2019, 242:522-528. doi: 10.1016/j.jenvman.2019.04.073
CrossRef Google Scholar
|
[117] |
Siebert S J, Schutte N C, Bester S P, et al.Senecio conrathii N.E.Br.(Asteraceae), a new hyperaccumulator of nickel from serpentinite outcrops of the Barberton Greenstone Belt, South Africa[J].Ecological Research, 2018, 33:651-658. doi: 10.1007/s11284-017-1541-5
CrossRef Google Scholar
|
[118] |
Yamaguchi T, Tomioka R, Takenaka C.Accumulation of cobalt and nickel in tissues of Clethra barbinervis in a metal dosing trial[J].Plant and Soil, 2017, 421:273-283. doi: 10.1007/s11104-017-3455-y
CrossRef Google Scholar
|
[119] |
Shu H Y, Zhang J, Liu F Y, et al.Comparative transcriptomic studies on a cadmium hyperaccumulator Viola baoshanensis and its non-tolerant counterpart V.inconspicua[J].International Journal of Molecular Sciences, 2019, 20:1906. doi: 10.3390/ijms20081906
CrossRef Google Scholar
|
[120] |
Potdukhe R M, Bedi P, Sarangi B K, et al.Root transcripts associated with arsenic accumulation in hyperaccumulator Pteris vittata[J].Journal of Biosciences, 2018, 43(1):105-115. doi: 10.1007/s12038-018-9735-8
CrossRef Google Scholar
|
[121] |
张云霞, 宋波, 宾娟, 等.超富集植物藿香蓟(Ageratum conyzoides L.)对镉污染农田的修复潜力[J].环境科学, 2019, 40(5):2453-2459.
Google Scholar
Zhang Y X, Song B, Bin J, et al.Remediation potential of Ageratum conyzoides L.on cadmium contaminated farmland[J].Environmental Science, 2019, 40(5):2453-2459.
Google Scholar
|
[122] |
Willscher S, Jablonski L, Fona Z, et al.Phytoremediation experiments with Helianthus tuberosus under different pH and heavy metal soil concentrations[J].Hydrometallurgy, 2017, 168:153-158. doi: 10.1016/j.hydromet.2016.10.016
CrossRef Google Scholar
|
[123] |
Kabas S, Mella F S, Huynh T, et al.Metal uptake and organic acid exudation of native Acacia species in mine tailings[J].Australian Journal of Botany, 2017, 65(4):357-367. doi: 10.1071/BT16189
CrossRef Google Scholar
|
[124] |
Wang L W, Hou D Y, Shen Z T, et al.Field trials of phytomining and phytoremediation:A critical review of influencing factors and effects of additives[J].Critical Reviews in Environmental Science and Technology, 2019, 51.
Google Scholar
|
[125] |
Bhargava A, Fuentes F, Shukla S, et al.Genetic variability in vegetable Chenopodium for morphological and quality traits over different cuttings[J].Ciencia e Investigacion Agraria, 2019, 46(2):179-186. doi: 10.7764/rcia.v46i2.2145
CrossRef Google Scholar
|
[126] |
Ruiz O N, Daniell H.Genetic engineering to enhance mercury phytoremediation[J].Current Opinion in Biotechnology, 2009, 20:213-219. doi: 10.1016/j.copbio.2009.02.010
CrossRef Google Scholar
|
[127] |
Valdez E G, Alarcóna A, Cerrato R F, et al.Induced accumulation of Au, Ag and Cu in Brassica napus grown in a mine tailings with the inoculation of Aspergillus niger and the application of two chemical compounds[J].Ecotoxicology and Environmental Safety, 2018, 154:180-186. doi: 10.1016/j.ecoenv.2018.02.055
CrossRef Google Scholar
|
[128] |
Harris A T, Naidoo K, Nokes J, et al.Indicative assessment of the feasibility of Ni and Au phytomining in Australia[J].Journal of Cleaner Production, 2009, 17(2):194-200. doi: 10.1016/j.jclepro.2008.04.011
CrossRef Google Scholar
|
[129] |
刘婷婷, 彭程, 王梦, 等.海州香薷根细胞壁对铜的吸附固定机制研究[J].环境科学学报, 2014, 34(2):514-523.
Google Scholar
Liu T T, Peng C, Wang M, et al.Mechanism of fixation and adsorption of copper on root cell wall of Elsholtzia splendens[J].Acta Scientiae Circumstantiae, 2014, 34(2):514-523.
Google Scholar
|
[130] |
何宇宁, 徐仲瑞, 熊治廷.铜胁迫对不同抗性种群海州香薷酸性转化酶基因启动子甲基化的影响[J].植物科学学报, 2017, 35(4):574-582.
Google Scholar
He Y N, Xu Z R, Xiong Z T.DNA methylation patterns of acid invertase gene promoters from Cu-tolerant and non-tolerant populations of Elsholtzia haichowensis under copper stress[J].Plant Science Journal, 2017, 35(4):574-582.
Google Scholar
|
[131] |
Farjandi F, Faiziev A, Fozilov M, et al.The application of biogeochemistry for gold exploration in the Masjed-Daghi, Julfa, NW Iran[J].Arabian Journal of Geosciences, 2013, 6(5):1435-1446. doi: 10.1007/s12517-011-0448-7
CrossRef Google Scholar
|