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Articles

Colonization and phytoremediation potential for Miscanthus sacchariflorus in copper tailings

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Pages 532-543 | Received 22 Mar 2022, Accepted 11 Aug 2022, Published online: 29 Aug 2022

References

  • Arvizu-Valenzuela LV, Cruz-Ortega R, Meza-Figueroa D, et al. Barriers for plant establishment in the abandoned tailings of Nacozari, Sonora, Mexico: the influence of compost addition on seedling performance and tailing properties. Environ Sci Pollut Res. 2020;27:39635–39650.
  • Fashola MO, Ngole-Jeme VM, Babalola OO. Physicochemical properties: heavy metals, and metal-tolerant bacteria profiles of abandoned gold mine tailings in Krugersdorp, South Africa. Can J Soil Sci. 2020;100:1–17.
  • Wang HJ, Xue YZ, Lei PX. (2016). The Report of Mineral Resources Saving & Comprehensive Utilization in China. China, Beijing: Geological Publishing House.
  • Acosta J, Faz A, Martínez-Martínez S, et al. Multivariate statistical and GIS-based approach to evaluate heavy metals behaviors in mine sites for future reclamation. J Geochem Explor. 2011;109:8–17.
  • Roseby SJ, Kopittke PM, Mulligan DR, et al. Evaluation of pyritic mine tailings as a plant growth substrate. J Environ Manage. 2017;201:207–214.
  • Santibañez C, de la Fuente LM, Bustamante E, et al. Potential use of organic-and hard-rock mine wastes on aided phytostabilization of large-scale mine tailings under semiarid Mediterranean climatic conditions: short-term field study. Appl Environ Soil Sci. 2011;2012:1–15.
  • Babel S, Chauhan R, Ali N, et al. Preparation of phosphate mine tailings and low grade rock phosphate enriched bio-fertilizer. J Sci Ind Res. 2016;75:120–123.
  • Franzaring J, Ancora S, Paoli L, et al. Phytotoxicity of polymetallic mine wastes from southern Tuscany and Saxony. Ecotox Environl Safe. 2018;162:505–513.
  • Bernardino AF, Pais FS, Oliveira LS, et al. Chronic trace metals effects of mine tailings on estuarine assemblages revealed by environmental DNA. PeerJ. 2019;7:e8042.
  • Tapia Y, Bustos P, Salazar O, et al. Phytostabilization of Cu in mine tailings using native plant Carpobrotus aequilaterus and the addition of potassium humates. J Geochem Explor. 2017;183:102–113.
  • Young G, Chen Y, Yang M. Concentrations, distribution, and risk assessment of heavy metals in the iron tailings of Yeshan national mine park in Nanjing, China. Chemosphere. 2021;271:129546.
  • Mahar A, Wang P, Ali A, et al. Challenges and opportunities in the phytoremediation of heavy metals contaminated soils: a review. Ecotoxicol Environ Safety. 2016;126:111–121.
  • Wang L, Ji B, Hu Y, et al. (2017) A review on in situ phytoremediation of mine tailings. Chemosphere 184: 594-600.
  • Sawar N, Imran M, Shaheen MR, et al. Phytoremediation strategies for soils contaminated with heavy metals: modifications and future perspectives. Chemosphere. 2017;171:710–721.
  • Zhang ZQ, Shu WS, Lan CY, et al. Soil seed bank as an input of seed source in revegetation of lead/zinc mine tailings. Restor Ecol. 2001;9:378–385.
  • Gagnon V, Rodrigue-Morin M, Tardif A, et al. Differences in elemental composition of tailings, soils, and plant tissues following five decades of native plant colonization on a gold mine site in Northwestern Québec. Chemosphere. 2020;250:126243.
  • Macdonald SJ, Jordan GJ, Bailey TG, et al. Early seedling establishment on aged Tasmanian tin mine tailings constrained by nutrient deficiency and soil structure, not toxicity. Soil Res. 2017;55:692–703.
  • Rizvi A, Khan MS. Biotoxic impact of heavy metals on growth: oxidative stress and morphological changes in root structure of wheat (Triticum aestivum L.) and stress alleviation by Pseudomonas aeruginosa strain CPSB1. Chemosphere. 2017;185:942–952.
  • Xin J, Zhang Y, Tian R. Tolerance mechanism of Triarrhena sacchariflora (Maxim.) Nakai. Seedlings to lead and cadmium: translocation: subcellular distribution, chemical forms and variations in leaf ultrastructure. Ecotox Environ Safe. 2018;165:611–621.
  • Xin J, Ma S, Li Y, et al. Pontederia cordata, an ornamental aquatic macrophyte with great potential in phytoremediation of heavy-metal-contaminated wetlands. Ecotox Environ Safe. 2020;203:111024.
  • Zhang J, Zhou SB, Huang YJ, et al. Copper tolerance and accumulation characteristics of energy plant Miscanthus sacchariflorus (Maxim.) Benth. J Soil Water Conserv. 2013;27:168–172. 188.
  • Yang CD, Zhang X, Wang Y, et al. Estimated spreading capacity and soil stabilization by rhizome and adventitious root systems of dicao. J Yangtze Uni (Nat Sci Edit). 2009;6:19–23.
  • Tian RN, Yu S, Wang SG, et al. Heavy metal tolerance and accumulation of Triarrhena sacchariflora, a large amphibious ornamental grass. Water Sci Technol. 2013;68:1795–1800.
  • Sun SX. Silviculture. Beijing: Agriculture Press; 1992.
  • Yan QC. Principles of seed testing and technology. Hangzhou: Zhejiang University Press; 1992.
  • Ren AZ, Gao YB. Effects of single and combinative pollutions of lead: cadmium and chromium on the germination of Brassica chinensis L. Chin J Ecol. 2000;19:19–22.
  • Chen LT, Sun AQ, Yang M, et al. Seed vigor evaluation based on adversity resistance index of wheat seed germination under stress condition. Chin J Appl Ecol. 2016;27:2968–2974.
  • Guan SY. Soil enzyme and its research methods. Beijing: Agriculture Press; 1986.
  • Tessier A, Campbell PGC, Bisson M. Sequential extraction procedure for the speciation of particulate trace metals. Anal Chem. 1979;51:844–851.
  • Palomar VM, Garciarrubio A, Garay-Arroyo A, et al. The canonical RdDM pathway mediates the control of seed germination timing under salinity. Plant J. 2020;105:691–707.
  • Jaouani K, Karmous I, Ostrowski M, et al. Cadmium effects on embryo growth of pea seeds during germination: Investigation of the mechanisms of interference of the heavy metal with protein mobilization-related factors. J Plant Physiol. 2018;226:64–76.
  • Nanda R, Agrawal V. Elucidation of zinc and copper induced oxidative stress, DNA damage and activation of defense system during seed germination in Cassia angustifolia Vahl. Environ Experi Bot. 2016;125:31–41.
  • Sfaxi-Bousbih A, Chaoui A, Ferjani EE. Cadmium impairs mineral and carbohydrate mobilization and during the germination of bean seeds. Ecotox Environ Safe. 2010;73:1123–1129.
  • Majeed A, Muhammad Z, Siyar S. Assessment of heavy metal induced stress responses in pea (Pisum sativum L.). Acta Ecol Sinica. 2019;39:284–288.
  • Karmous I, Chaoui A, Jaouani K, et al. Role of the ubiquitin-proteasome pathway and some peptides during seed germination and copper stress in bean cotyledons. Plant Physiol Biochem. 2014;76:77–85.
  • Ye N, Li H, Zhu G, et al. Copper suppresses abscisic acid catabolism and catalase activity, and inhibits seed germination of rice. Plant Cell Environ. 2014;55:2008–2016.
  • Sheetal KR, Singh SD, Anand A, et al. Heavy metal accumulation and effects on growth, biomass and physiological processes in mustard. Ind J Plant Physiol. 2016;21:219–223.
  • Ali S, Rizwan M, Bano R, et al. Effects of biochar on growth, photosynthesis, and chromium (Cr) uptake in Brassica rapa L. under Cr stress. Arab J Geosci. 2018;11:507.
  • Gonzaga MI, Santos JA, Ma LQ. Phytoextraction by arsenic hyperaccumulator Pteris vittata L. from six arsenic-contaminated soils: repeated harvests and arsenic redistribution. Environ Pollut. 2008;154:212–218.
  • Zhang X, Gao B, Xia H. Effect of cadmium on growth: photosynthesis,: mineral nutrition and metal accumulation of bana grass and vetiver grass. Ecotox Environ Safe. 2014;106:102–108.
  • Wei S. Main rhizosphere characteristics of the Cd hyperaccumulator Rorippa globosa (Turcz.) Thell. Plant Soil. 2013;372:669–681.
  • Keller C, Hammer D, Kayser A, et al. Root development and heavy metal phytoextraction efficiency: comparison of different plant species in the field. Plant Soil. 2003;249:67–81.
  • He JY, Zhu C, Ren YF, et al. Root morphology and cadmium uptake kinetics of the cadmium-sensitive rice mutant. Biol Plantarum. 2007;51:791–794.
  • Tamás L, Mistrík I, Zelinová V. Heavy metal-induced reactive oxygen species and cell death in barley root tip. Environ Exper Bot. 2017;140:34–40.
  • Finger-Teixeira A, de Lourdes Lucio Ferrarese M, Soares AR, et al. Cadmium-induced lignification restricts soygean root growth. Ecotox Environ Safe. 2010;73:1959–1964.
  • Fenner M. Seed ecology. New York: Springer; 1985.
  • Lin H, Liu CJ, Li B, et al. Trifolium repens L. regulated phytoremediation of heavy metal contaminated soil by promoting soil enzyme activities and beneficial rhizosphere associated microorganisms. J Hazard Mater. 2021;402:123829.
  • Pieterse CMJ, Zamioudis C, Berendsen RL, et al. Induced systemic resistance by beneficial microbes. Annu Rev Phytopathol. 2014;52:347–375.
  • Wiatrowska K, Komisarek J, Dłużewski P. Effects of heavy metals on the activity of dehydrogenases: phosphatases and urease in naturally and artificially contaminated soils. J Elementol. 2015;20:743–756.
  • Sun Y, Zheng S, Wang L, et al. Changes of enzymatic activities, substrate utilization pattern, and microbial community diversity in heavy metal-contaminated soils. Water Air Soil Poll. 2020;231:422.
  • Aponte H, Meli P, Butler B, et al. Meta-analysis of heavy metal effects on soil enzyme activities. Sci Total Environ. 2020;737:139744.
  • Yang B, Shu WS, Ye ZH, et al. Growth and metal accumulation in vetiver and two Sesbania species on lead/zinc mine tailings. Chemosphere. 2003;52:1593–1600.
  • Mahrous NN, Columbus MP, 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). Rhizosphere. 2019;11:100169.
  • Mench MJ, Fargues S. Metal uptake by iron-efficient and inefficient oats. Plant Soil. 1994; 165: 227–233.
  • Perlatti F, Ferreira TO, Romero RE, et al. (2015) Copper accumulation and changes in soil physical-chemical properties promoted by native plants in an abandoned mine site in northeastern Brazil: implications for restoration of mine sites. Ecol Eng 82: 103-111.
  • Chen YJ, Tao S, Deng BS, et al. Variation of copper and lead fractions in rhizosphere soil. Acta Sci Circumst. 2000;20:2000.
  • Tao S, Chen YJ, Xu FL, et al. Changes of copper speciation in maize rhizosphere soil. Environ Pollut. 2003;122:447–454.
  • Song F, Guo Y, Liu X, et al. Pollution of cadmium, zinc and lead in brown earth. Acta Sci Circumstantiate. 1996;16:431–435.
  • Xin JP, Tang JY, Liu YL, et al. Pre-aeration of the rhizosphere offers potential for phytoremediation of heavy metalcontaminated wetlands. J Hazard Mater. 2019;374: 437–446.
  • Lei M, Liao B, Qin P. Assessment of bioavailability of heavy metal in contaminated soils with chemical fractionation. Ecol Environ. 2007;16:1551–1556.
  • Gao J, Dang H, Jiang L, et al. The contamination and biological effect of heavy metals Cu, Zn and Pb in farmland soil from mine area. Chin Agr Sci Bull. 2013;29:137–141.

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