Soil Bioremediation. Группа авторов

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      111 111 Reeves, R.D. (2003). Tropical hyperaccumulators of metals and their potential for phytoextraction. Plant and Soil 249 (1): 57–65.

      112 112 Wu, H., Zhang, J., Ngo, H.H. et al. (2015). A review on the sustainability of constructed wetlands for wastewater treatment: design and operation. Bioresource Technology 175: 594–601.

      113 113 Bratby, J. (2016). Coagulation and Flocculation in Water and Wastewater Treatment. London: IWA Publishing.

      114 114 Giuliano, A., Sabia, G., Cabez, J.F. et al. (2017). Assessment of performance and advantages related to the use of a natural coagulant in the industrial wastewater treatment. Environmental Engineering & Management Journal (EEMJ) 16 (8): 1709–1719.

      115 115 Goncalves, A.L., Pires, J.C., and Simões, M. (2017). A review on the use of microalgal consortia for wastewater treatment. Algal Research 24: 403–415.

      116 116 Wang, Q., Wei, W., Gong, Y. et al. (2017). Technologies for reducing sludge production in wastewater treatment plants: state of the art. Science of the Total Environment 587: 510–521.

      117 117 Limmer, M. and Burken, J. (2016). Phytovolatilization of organic contaminants. Environmental Science & Technology 50 (13): 6632–6643.

      118 118 Ijaz, A., Imran, A., ul Haq, M.A. et al. (2016). Phytoremediation: recent advances in plant‐endophytic synergistic interactions. Plant and Soil 405 (1–2): 179–195.

      119 119 He, Y., Langenhoff, A.M., Sutton, N.B. et al. (2017). Metabolism of ibuprofen by Phragmites australis: uptake and phytodegradation. Environmental Science & Technology 51 (8): 4576–4584.

      120 120 Al‐Baldawi, I.A., Sheikh Abdullah, S.R., Anuar, N. et al. (2015). Phytodegradation of total petroleum hydrocarbon (TPH) in diesel‐contaminated water using Scirpus grossus. Ecological Engineering 74: 463–473.

      121 121 Vera‐Estrella, R., Gómez‐Méndez, M.F., Amezcua‐Romero, J.C. et al. (2017). Cadmium and zinc activate adaptive mechanisms in Nicotiana tabacum similar to those observed in metal tolerant plants. Planta 246 (3): 433–451.

      122 122 Hasan, M., Cheng, Y., Kanwar, M.K. et al. (2017). Responses of plant proteins to heavy metal stress – a review. Frontiers in Plant Science 8: 1492.

      123 123 Van Oosten, M.J. and Maggio, A. (2015). Functional biology of halophytes in the phytoremediation of heavy metal contaminated soils. Environmental and Experimental Botany 111: 135–146.

      124 124 Malar, S., Vikram, S.S., Favas, P.J.C. et al. (2016). Lead heavy metal toxicity induced changes on growth and antioxidative enzymes level in water hyacinths [Eichhornia crassipes (Mart.)]. Botanical Studies 55 (1): 54.

      125 125 Banerjee, G., Pandy, S., Ray, A.K. et al. (2015). Bioremediation of heavy metals by a novel bacterial strain Enterobacter cloacae and its antioxidant enzyme activity, flocculant production, and protein expression in presence of lead, cadmium, and nickel. Water, Air, & Soil Pollution 226 (4): 91.

      126 126 Kumar, S., Kaushik, G., Dar, M.A. et al. (2018). Microbial degradation of organophosphate pesticides: a review. Pedosphere 28 (2): 190–208.

      127 127 Goyal, N., Jain, S., and Banerjee, U. (2003). Comparative studies on the microbial adsorption of heavy metals. Advances in Environmental Research 7 (2): 311–319.

      128 128 Day, T.A., Bliss, M.S., Tomes, A.R. et al. (2018). Desert leaf litter decay: coupling of microbial respiration, water‐soluble fractions and photodegradation. Global Change Biology 24 (11): 5454–5470.

      129 129 John, E.M. and Shaike, J.M. (2015). Chlorpyrifos: pollution and remediation. Environmental Chemistry Letters 13 (3): 269–291.

      130 130 Alneyadi, A.H. and Ashraf, S.S. (2016). Differential enzymatic degradation of thiazole pollutants by two different peroxidases – a comparative study. Chemical Engineering Journal 303: 529–538.

      131 131 Silverman, A.I., Sedlak, D.L., and Nelson, K.L. (2018). Simplified process to determine rate constants for sunlight‐mediated removal of trace organic and microbial contaminants in unit process open‐water treatment wetlands. Environmental Engineering Science 36 (1): 43–59.

      132 132 Dar, M.I., Naikoo, M.I., Green, I.D. et al. (2018). Heavy metal hyperaccumulation and hypertolerance in Brassicaceae. In: Plants under Metal and Metalloid Stress (eds. M. Hasanuzzaman, K. Nahar and M. Fujita), 263–276. Springer.

      133 133 Clemens, S. and Ma, J.F. (2016). Toxic heavy metal and metalloid accumulation in crop plants and foods. Annual Review of Plant Biology 67: 489–512.

      134 134 Epelde, L., Lanzén, A., Blanco, F. et al. (2015). Adaptation of soil microbial community structure and function to chronic metal contamination at an abandoned Pb‐Zn mine. FEMS Microbiology Ecology 91 (1): 1–11.

      135 135 Yin, H., Niu, J., Ren, Y. et al. (2015). An integrated insight into the response of sedimentary microbial communities to heavy metal contamination. Scientific Reports 5: 14266.

      136 136 Pishchik, V., Oliveira, R.S., Ren, Y. et al. (2016). Mechanisms of plant and microbial adaptation to heavy metals in plant–microbial systems. Microbiology 85 (3): 257–271.

      137 137 Richter, J., Ploderer, M., Mongelard, G. et al. (2017). Role of CrRLK1L Cell Wall sensors HERCULES1 and 2, THESEUS1, and FERONIA in growth adaptation triggered by heavy metals and trace elements. Frontiers in Plant Science 8: 1554.

      138 138 Mesa, J., Mateos‐Naranjo, E., Caviedes, M.A. et al. (2015). Scouting contaminated estuaries: heavy metal resistant and plant growth promoting rhizobacteria in the native metal rhizoaccumulator Spartina maritima. Marine Pollution Bulletin 90 (1–2): 150–159.

      139 139 Krämer, U. (2018). The plants that suck up metal. German Research 40 (3): 18–23.

      140 140 de la Torre, V.S.G., Majorel‐Loulergue, C., Gonzalez, D.A. et al., Wide cross‐species RNA‐seq comparison reveals convergent molecular mechanisms involved in nickel hyperaccumulation across angiosperms. CellPress. Available at: https://papers.ssrn.com/sol3/papers.cfm?abstract_id=3272237 (2018).

      141 141 Deng, T.‐H.‐B., Van Der Ent, A., Tang, Y.‐T. et al. (2018). Nickel hyperaccumulation mechanisms: a review on the current state of knowledge. Plant and Soil 423 (1–2): 1–11.

      142 142 Pilon‐Smits, E.A. (2017). Mechanisms of plant selenium hyperaccumulation. In: Selenium in Plants (eds. E.A.H. Pilon‐Smits, L.H.E. Winkel and Z.‐Q. Lin), 53–66. Springer.

      143 143 Im, J., Yang, K., Jho, E.H. et al. (2015). Effect of different soil washing solutions on bioavailability of residual arsenic in soils and soil properties. Chemosphere 138: 253–258.

      144 144 Xian, Y., Wang, M., and Chen, W. (2015). Quantitative assessment on soil enzyme activities of heavy metal contaminated soils with various soil properties. Chemosphere 139: 604–608.

      145 145 Dias, D., de Castro Moreira, M.E., Contin Gomes, M.J. et al. (2015). Rice and bean targets for biofortification combined with high carotenoid content crops regulate transcriptional mechanisms increasing iron bioavailability. Nutrients 7 (11): 9683–9696.

      146 146 Ullah, A., Fahad, S., Munis, H.F. et al. (2015). Phytoremediation of heavy metals assisted by plant growth promoting

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