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Published in: Journal of Material Cycles and Waste Management 4/2020

17-03-2020 | REVIEW

Principles and methods of bio detoxification of cyanide contaminants

Authors: Anning Cosmos, Bat-Oyun Erdenekhuyag, Geng Yao, Huijuan Li, Jinggang Zhao, Wang Laijun, Xianjun Lyu

Published in: Journal of Material Cycles and Waste Management | Issue 4/2020

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Abstract

Cyanide is a known toxic chemical compound that has an adverse effect on living organisms. Nonetheless, it is one of the active reagents in industries such as mining, pharmaceutical, cosmetics, and food processing companies worldwide. The beneficiation of gold and other precious metals from ore generates great amount of cyanide-bearing contaminants, which is released into the environment. The abundance of cyanide contaminants from these industries have created public health concern since the inception of metal extraction from ore. There are strict regulations on the production, transportation, utilization, and disposal of cyanide-bearing contaminants worldwide. The conventional treatment of cyanide waste is either chemical or physical process. The use of these treatment processes has certain pitfalls like operational challenges, an increase in capital cost, and generation of secondary waste. A number of microorganisms have the potential to utilize cyanide as nitrogen and carbon source and transform it into ammonia and carbon dioxide. Biodetoxification might be efficiently, economically and environmentally safe to detoxify cyanide in contaminants and attractive alternative to conventional detoxification method like chemical or physical. This paper reviews the principles and methods of biodetoxification of cyanide contaminants found in the ecosystem.

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Literature
1.
go back to reference Smith A (1988) Cyanide degradation and detoxification in a heap leach. In: van Zyl JA, Ian H, Kiel J. (eds) Introduction to evaluation, design and operation of precious metal heap leaching projects, 1st edn. Society for Mining Metallurgy, pp 293–305 Smith A (1988) Cyanide degradation and detoxification in a heap leach. In: van Zyl JA, Ian H, Kiel J. (eds) Introduction to evaluation, design and operation of precious metal heap leaching projects, 1st edn. Society for Mining Metallurgy, pp 293–305
2.
go back to reference Nazly N, Knowles CJ (1981) Cyanide degradation by immobilised fungi. Biotechnol Lett 3(7):363–368 Nazly N, Knowles CJ (1981) Cyanide degradation by immobilised fungi. Biotechnol Lett 3(7):363–368
3.
go back to reference Botz MM (2001) Overview of cyanide treatment methods. In: Mudder T (ed) Mining environmental management. Mining Journal Books Ltd., London, pp 28–30 Botz MM (2001) Overview of cyanide treatment methods. In: Mudder T (ed) Mining environmental management. Mining Journal Books Ltd., London, pp 28–30
4.
go back to reference Williamson A, Johnson MS (1981) Reclamation of metalliferous mine wastes. In: Lepp NW (eds) Effect of heavy metal pollution on plants. Pollution Monitoring Series, vol 2. Springer, Dordrecht. pp. 185–212. https://doi.org/10.1007/978-94-009-8099-0_6. Williamson A, Johnson MS (1981) Reclamation of metalliferous mine wastes. In: Lepp NW (eds) Effect of heavy metal pollution on plants. Pollution Monitoring Series, vol 2. Springer, Dordrecht. pp. 185–212. https://​doi.​org/​10.​1007/​978-94-009-8099-0_​6.​
5.
go back to reference Sinha R, Valani D, Sinha S et al (2010) Bioremediation of contaminated sites: a low-cost nature’s biotechnology for environmental clean up by versatile microbes, plants & earthworms. In: Faerber T, Herzog J (eds) Solid waste management and environmental remediation. Nova Science, USA Sinha R, Valani D, Sinha S et al (2010) Bioremediation of contaminated sites: a low-cost nature’s biotechnology for environmental clean up by versatile microbes, plants & earthworms. In: Faerber T, Herzog J (eds) Solid waste management and environmental remediation. Nova Science, USA
6.
go back to reference Rodger PB (1981) Cyanide degradation by Chromobacterium violaceum. In: Vennesland B, Conn EE, Knowles CJ, Westley J, Wissing F (eds) Cyanide in biology. Academic Press, New York, pp 301–310 Rodger PB (1981) Cyanide degradation by Chromobacterium violaceum. In: Vennesland B, Conn EE, Knowles CJ, Westley J, Wissing F (eds) Cyanide in biology. Academic Press, New York, pp 301–310
8.
go back to reference Young C, Jordan T (1995) Cyanide remediation: current and past technologies. In: Proceedings of the 10th Annual Conference on Hazardous Waste Research. May 23–24, 1995, Kansas State Univ., Manhattan, Kansas, USA Young C, Jordan T (1995) Cyanide remediation: current and past technologies. In: Proceedings of the 10th Annual Conference on Hazardous Waste Research. May 23–24, 1995, Kansas State Univ., Manhattan, Kansas, USA
12.
go back to reference Alexander M (1994) Biodegradation and bioremediation, 2nd edn. Academic Press, New York Alexander M (1994) Biodegradation and bioremediation, 2nd edn. Academic Press, New York
14.
go back to reference Ezzi MI, Lynch JM (2005) Biodegradation of cyanide by Trichoderma spp. and Fusarium spp. Enzyme Microbial Technol 36(7):849–854 Ezzi MI, Lynch JM (2005) Biodegradation of cyanide by Trichoderma spp. and Fusarium spp. Enzyme Microbial Technol 36(7):849–854
17.
go back to reference Igeño MI, Orovengua E, Guijo MI et al (2007) Biodegradation of cyanide-containing wastes by Pseudomonas pseudoalcaligenes CECT5344. Commun Curr Res Educ Topics Trends Appl Microbiol 1:100–107 Igeño MI, Orovengua E, Guijo MI et al (2007) Biodegradation of cyanide-containing wastes by Pseudomonas pseudoalcaligenes CECT5344. Commun Curr Res Educ Topics Trends Appl Microbiol 1:100–107
18.
go back to reference Kuyucak N, Akcil A (2013) Cyanide and removal options from effluents in gold mining and metallurgical processes. Miner Eng 50:13–29 Kuyucak N, Akcil A (2013) Cyanide and removal options from effluents in gold mining and metallurgical processes. Miner Eng 50:13–29
20.
go back to reference Watts MP, Moreau JW (2018) Thiocyanate biodegradation: harnessing microbial metabolism for mine remediation. Microbiol Aust 39(3):157–161 Watts MP, Moreau JW (2018) Thiocyanate biodegradation: harnessing microbial metabolism for mine remediation. Microbiol Aust 39(3):157–161
23.
go back to reference Lu Z, Cai M (2012) Disposal methods on solid wastes from mines in transition from open-pit to underground mining. Proc Environ Sci 16:715–721 Lu Z, Cai M (2012) Disposal methods on solid wastes from mines in transition from open-pit to underground mining. Proc Environ Sci 16:715–721
24.
go back to reference Akcil A (2002a) Cyanide control in tailings pond: ovacik gold mine, Turkey. In: Proceedings of Seventh International Symposium on Environmental Issues and Waste Management in Energy and Mineral Production (SWEMP), 7–10 october, 2002, Cagliar, sardinia, Italy, 437–441. Kluwer Academic Publishers. https://doi.org/10.1023/A:1022608213814 Akcil A (2002a) Cyanide control in tailings pond: ovacik gold mine, Turkey. In: Proceedings of Seventh International Symposium on Environmental Issues and Waste Management in Energy and Mineral Production (SWEMP), 7–10 october, 2002, Cagliar, sardinia, Italy, 437–441. Kluwer Academic Publishers. https://​doi.​org/​10.​1023/​A:1022608213814
25.
go back to reference Jaszczak E, Polkowska Ż, Narkowicz S, Namieśnik J (2017) Cyanides in the environment, analysis, problems and challenges. Environ Sci Pollut Res 24(19):15929–15948 Jaszczak E, Polkowska Ż, Narkowicz S, Namieśnik J (2017) Cyanides in the environment, analysis, problems and challenges. Environ Sci Pollut Res 24(19):15929–15948
26.
go back to reference Dzombak DA, Ghosh RS, Young TC (2005) Physical–chemical properties and reactivity of cyanide in water and soil. CRC Press, Boca Raton, pp 69–104 Dzombak DA, Ghosh RS, Young TC (2005) Physical–chemical properties and reactivity of cyanide in water and soil. CRC Press, Boca Raton, pp 69–104
27.
go back to reference Anning C, Wang J, Chen P, Batmunkh I et al (2019) Determination and detoxification of cyanide in gold mine tailings: a review. Waste Manag Res 37(11):1117–1126 Anning C, Wang J, Chen P, Batmunkh I et al (2019) Determination and detoxification of cyanide in gold mine tailings: a review. Waste Manag Res 37(11):1117–1126
28.
go back to reference Borgerding M, Klus H (2005) Analysis of complex mixtures–cigarette smoke. Exp Toxicol Pathol 57:43–73 Borgerding M, Klus H (2005) Analysis of complex mixtures–cigarette smoke. Exp Toxicol Pathol 57:43–73
29.
go back to reference Raybuck SA (1992) Microbes and microbial enzymes for cyanide degradation. J Biodegrad 3(1):3–18 Raybuck SA (1992) Microbes and microbial enzymes for cyanide degradation. J Biodegrad 3(1):3–18
30.
go back to reference Baskin SI, Kelly JB, Maliner BI, Rockwood GA et al (2008) Cyanide poisoning. Med Asp Chem Warf 11:372–410 Baskin SI, Kelly JB, Maliner BI, Rockwood GA et al (2008) Cyanide poisoning. Med Asp Chem Warf 11:372–410
32.
go back to reference Luque-Almagro VM, Moreno-Vivián C, Roldán MD (2016) Biodegradation of cyanide wastes from mining and jewellery industries. Curr Opin Biotechnol 38:9–13 Luque-Almagro VM, Moreno-Vivián C, Roldán MD (2016) Biodegradation of cyanide wastes from mining and jewellery industries. Curr Opin Biotechnol 38:9–13
35.
go back to reference Solomonson LP (1981) Cyanide as a metabolic inhibitor. In: Vannesland B, Conn EE, Knowles CJ, Westly J, Wissing F (eds) Cyanide in biology. Academic press, New York, pp 11–28 Solomonson LP (1981) Cyanide as a metabolic inhibitor. In: Vannesland B, Conn EE, Knowles CJ, Westly J, Wissing F (eds) Cyanide in biology. Academic press, New York, pp 11–28
38.
go back to reference Botz MM, Mudder TI, Akcil A (2005) Cyanide treatment: physical, chemical and biological process. In: Adams M (ed) Advances in gold ore processing. Elsevier Inc., Amsterdam, pp 672–700 Botz MM, Mudder TI, Akcil A (2005) Cyanide treatment: physical, chemical and biological process. In: Adams M (ed) Advances in gold ore processing. Elsevier Inc., Amsterdam, pp 672–700
40.
go back to reference Kjeldsen P (1999) Behaviour of cyanides in soil and groundwater: a review. Water Air Soil Pollut 115:279–308 Kjeldsen P (1999) Behaviour of cyanides in soil and groundwater: a review. Water Air Soil Pollut 115:279–308
41.
go back to reference Kulig KW, Ballantyne B (1991) Cyanide toxicity. In: Case studies in environmental medicine. Agency for toxic substance and diseases Registry (ATSDR). 15: 5–7 Kulig KW, Ballantyne B (1991) Cyanide toxicity. In: Case studies in environmental medicine. Agency for toxic substance and diseases Registry (ATSDR). 15: 5–7
42.
go back to reference Rubec PJ, Soundararajan R (1990) Chronic toxic effects of cyanide on tropical marine fish. In: Proceedings of the Seventeenth Annual Toxicity Workshop: November 5–7, 1990, Vancouver, BC, Canada. Rubec PJ, Soundararajan R (1990) Chronic toxic effects of cyanide on tropical marine fish. In: Proceedings of the Seventeenth Annual Toxicity Workshop: November 5–7, 1990, Vancouver, BC, Canada.
43.
go back to reference Leduc G (1984) Cyanides in water: toxicology significance. In: Weber LJ (ed) Aquatic toxicology. Raven Press, New York, pp 153–224 Leduc G (1984) Cyanides in water: toxicology significance. In: Weber LJ (ed) Aquatic toxicology. Raven Press, New York, pp 153–224
45.
go back to reference Davis RH (1981) Cyanide detoxification in domestic fowl. In: Vannesland B, Conn EE, Knowles CJ, Westly J, Wissing F (eds) Cyanide in biology. Academic press, New York, NY, pp 57–60 Davis RH (1981) Cyanide detoxification in domestic fowl. In: Vannesland B, Conn EE, Knowles CJ, Westly J, Wissing F (eds) Cyanide in biology. Academic press, New York, NY, pp 57–60
46.
go back to reference Arya AK, Singh A, Bhatt D (2019) Pesticide applications in agriculture and their effects on birds: an overview. In: Contaminants in agriculture and environment: health risks and remediation 5:10 Arya AK, Singh A, Bhatt D (2019) Pesticide applications in agriculture and their effects on birds: an overview. In: Contaminants in agriculture and environment: health risks and remediation 5:10
48.
go back to reference Oró J (1972) Extraterrestrial organic analysis. Sp Life Sci 3(4):507–550 Oró J (1972) Extraterrestrial organic analysis. Sp Life Sci 3(4):507–550
49.
go back to reference Jones DA (1962) Selective eating of the acyanogenic form of the plant Lotus corniculatus L. by various animals. Nature 193(4820):1109–1110 Jones DA (1962) Selective eating of the acyanogenic form of the plant Lotus corniculatus L. by various animals. Nature 193(4820):1109–1110
50.
go back to reference Memariani Z, Farzaei MH, Ali A, Momtaz S (2020) Nutritional and bioactive characterization of unexplored food rich in phytonutrients. Elsevier, Amsterdam, pp 157–175 Memariani Z, Farzaei MH, Ali A, Momtaz S (2020) Nutritional and bioactive characterization of unexplored food rich in phytonutrients. Elsevier, Amsterdam, pp 157–175
51.
go back to reference Süntar I, Yakıncı ÖF (2020) Potential risks of phytonutrients associated with high-dose or long-term use Phytonutrients in food. Elsevier, Amsterdam, pp 137–155 Süntar I, Yakıncı ÖF (2020) Potential risks of phytonutrients associated with high-dose or long-term use Phytonutrients in food. Elsevier, Amsterdam, pp 137–155
52.
go back to reference Reisch MS (2017) Cyanide glitters for some. In: Use of the deadly chemical is on the rise in the gold mining industry. Chem Eng News 95(39):18–19 Reisch MS (2017) Cyanide glitters for some. In: Use of the deadly chemical is on the rise in the gold mining industry. Chem Eng News 95(39):18–19
53.
go back to reference Cunningham SA (2005) Incident, accident, catastrophe: cyanide on the Danube. Disasters 29(2):99–128 Cunningham SA (2005) Incident, accident, catastrophe: cyanide on the Danube. Disasters 29(2):99–128
54.
go back to reference Helwege A (2015) Challenges with resolving mining conflicts in Latin America. Extr Ind Soc 2(1):73–84 Helwege A (2015) Challenges with resolving mining conflicts in Latin America. Extr Ind Soc 2(1):73–84
55.
go back to reference Macklin MG, Brewer PA, Hudson-Edwards KA, Bird G et al (2006) A geomorphological approach to the management of rivers contaminated by metal mining. Geomorphology 79(3–4):423–447 Macklin MG, Brewer PA, Hudson-Edwards KA, Bird G et al (2006) A geomorphological approach to the management of rivers contaminated by metal mining. Geomorphology 79(3–4):423–447
56.
go back to reference Ani E-C, Cristea VM, Agachi PS (2012) Mathematical models to support pollution counteraction in case of accidents. Environ Eng Manag J (EEMJ) 11(1):7–13 Ani E-C, Cristea VM, Agachi PS (2012) Mathematical models to support pollution counteraction in case of accidents. Environ Eng Manag J (EEMJ) 11(1):7–13
57.
go back to reference Ramraj R (2001) The Omai disaster in Guyana. Geogr Bull Gamma Theta Upsilon 43(2):83–90 Ramraj R (2001) The Omai disaster in Guyana. Geogr Bull Gamma Theta Upsilon 43(2):83–90
58.
go back to reference Amegbey NA, Adimado AA (2003) Incidents of cyanide spillage in Ghana. Miner Process Extr Metall 112(2):126–130 Amegbey NA, Adimado AA (2003) Incidents of cyanide spillage in Ghana. Miner Process Extr Metall 112(2):126–130
59.
go back to reference Kumar R, Saha S, Dhaka S et al (2017) Remediation of cyanide-contaminated environments through microbes and plants: a review of current knowledge and future perspectives. Geosyst Eng 20(1):28–40 Kumar R, Saha S, Dhaka S et al (2017) Remediation of cyanide-contaminated environments through microbes and plants: a review of current knowledge and future perspectives. Geosyst Eng 20(1):28–40
65.
go back to reference Stam H, Stouthamer AH, van Verseveld HW (1985) Cyanide assimilation in Rhizobium ORS 571: influence of the nitrogenase catalyzed hydrogen production on the efficiency of growth. Arch Microbiol 143(2):196–202 Stam H, Stouthamer AH, van Verseveld HW (1985) Cyanide assimilation in Rhizobium ORS 571: influence of the nitrogenase catalyzed hydrogen production on the efficiency of growth. Arch Microbiol 143(2):196–202
66.
go back to reference Kunz DA, Nagappan O, Silva-Avalos J et al (1992) Utilization of cyanide as nitrogenous substrate by Pseudomonas fluorescens NCIMB 11764: evidence for multiple pathways of metabolic conversion. Appl Environ Microbiol 58(6):2022–2029 Kunz DA, Nagappan O, Silva-Avalos J et al (1992) Utilization of cyanide as nitrogenous substrate by Pseudomonas fluorescens NCIMB 11764: evidence for multiple pathways of metabolic conversion. Appl Environ Microbiol 58(6):2022–2029
67.
go back to reference Shin D, Park J, Park H et al (2019) Key microbes and metabolic potentials contributing to cyanide biodegradation in stirred-tank bioreactors treating gold mining effluent. Miner Process Extr Metall Rev 41:1–11 Shin D, Park J, Park H et al (2019) Key microbes and metabolic potentials contributing to cyanide biodegradation in stirred-tank bioreactors treating gold mining effluent. Miner Process Extr Metall Rev 41:1–11
71.
go back to reference Guilloton M, Espie G, Anderson P (2002) What is the role of cyanase in plants. Rev Plant Biochem J Biotechnol 1:57–79 Guilloton M, Espie G, Anderson P (2002) What is the role of cyanase in plants. Rev Plant Biochem J Biotechnol 1:57–79
72.
go back to reference Kao C, Liu J, Lou H et al (2003) Biotransformation of cyanide to methane and ammonia by Klebsiella oxytoca. Chemosphere 50(8):1055–1061 Kao C, Liu J, Lou H et al (2003) Biotransformation of cyanide to methane and ammonia by Klebsiella oxytoca. Chemosphere 50(8):1055–1061
74.
go back to reference Atkinson A (1975) Bacteria cyanide detoxification. J Biotechnol Bioeng 17:457–460 Atkinson A (1975) Bacteria cyanide detoxification. J Biotechnol Bioeng 17:457–460
77.
go back to reference Dursun A, Çalık A, Aksu Z (1999) Degradation of ferrous (II) cyanide complex ions by Pseudomonas fluorescens. Process Biochem 34(9):901–908 Dursun A, Çalık A, Aksu Z (1999) Degradation of ferrous (II) cyanide complex ions by Pseudomonas fluorescens. Process Biochem 34(9):901–908
79.
go back to reference Adams D, Komen J, Pickett T (2001) Biological cyanide degradation. In: Young CA (ed) Cyanide: social, industrial and economic aspects. The Mineral Metals & Material Society, Warrendale, pp 203–213 Adams D, Komen J, Pickett T (2001) Biological cyanide degradation. In: Young CA (ed) Cyanide: social, industrial and economic aspects. The Mineral Metals & Material Society, Warrendale, pp 203–213
82.
go back to reference Mirizadeh S, Yaghmaei S, Nejad ZG (2014) Biodegradation of cyanide by a new isolated strain under alkaline conditions and optimization by response surface methodology (RSM). J Environ Health Sci Eng 12(1):85 Mirizadeh S, Yaghmaei S, Nejad ZG (2014) Biodegradation of cyanide by a new isolated strain under alkaline conditions and optimization by response surface methodology (RSM). J Environ Health Sci Eng 12(1):85
83.
go back to reference Dwivedi N, Balomajumder C, Mondal P (2016) Comparative evaluation of cyanide removal by adsorption, biodegradation, and simultaneous adsorption and biodegradation (SAB) process using Bacillus cereus and almond shell. J Environ Biol 37(4):551–556 Dwivedi N, Balomajumder C, Mondal P (2016) Comparative evaluation of cyanide removal by adsorption, biodegradation, and simultaneous adsorption and biodegradation (SAB) process using Bacillus cereus and almond shell. J Environ Biol 37(4):551–556
84.
go back to reference Trapp S, Larsen M, Pirandello A et al (2003) Feasibility of cyanide elimination using plants. Eur J Miner Process Environ Protect 3(1):128–137 Trapp S, Larsen M, Pirandello A et al (2003) Feasibility of cyanide elimination using plants. Eur J Miner Process Environ Protect 3(1):128–137
85.
go back to reference Razanamahandry LC, Andrianisa HA, Karoui H et al (2016) Biodegradation of free cyanide by bacterial species isolated from cyanide-contaminated artisanal gold mining catchment area in Burkina Faso. Chemosphere 157:71–78 Razanamahandry LC, Andrianisa HA, Karoui H et al (2016) Biodegradation of free cyanide by bacterial species isolated from cyanide-contaminated artisanal gold mining catchment area in Burkina Faso. Chemosphere 157:71–78
86.
go back to reference Moradkhani M, Yaghmaei S, Nejad ZG (2017) Biodegradation of cyanide under alkaline conditions by a strain of Pseudomonas putida isolated from gold mine soil and optimization of process variables through response surface methodology (RSM). Period Polytech Chem Eng 62(3):265–273. https://doi.org/10.3311/ppch.10860 CrossRef Moradkhani M, Yaghmaei S, Nejad ZG (2017) Biodegradation of cyanide under alkaline conditions by a strain of Pseudomonas putida isolated from gold mine soil and optimization of process variables through response surface methodology (RSM). Period Polytech Chem Eng 62(3):265–273. https://​doi.​org/​10.​3311/​ppch.​10860 CrossRef
89.
go back to reference Barclay M, Hart A, Knowles CJ et al (1998) Biodegradation of metal cyanides by mixed and pure cultures of fungi. Enzyme Microbial Technol 22(4):223–231 Barclay M, Hart A, Knowles CJ et al (1998) Biodegradation of metal cyanides by mixed and pure cultures of fungi. Enzyme Microbial Technol 22(4):223–231
92.
go back to reference Admassu W, Korus RA (1996) Engineering of bioremediation processes: needs and limitations. Biotechnol Res Ser 6:13–34 Admassu W, Korus RA (1996) Engineering of bioremediation processes: needs and limitations. Biotechnol Res Ser 6:13–34
97.
go back to reference Crawford RL, Crawford DL (2005) Bioremediation: principles and applications. Cambridge University Press, New York Crawford RL, Crawford DL (2005) Bioremediation: principles and applications. Cambridge University Press, New York
101.
go back to reference Sharma S (2012) Bioremediation: features, strategies and applications. Asian J Pharm Life Sci 2(2):2231–4423 Sharma S (2012) Bioremediation: features, strategies and applications. Asian J Pharm Life Sci 2(2):2231–4423
102.
go back to reference Atlas RM, Philp J (2005) Bioremediation: applied aquifers. Applied microbial solutions for real-world environmental cleanup. American Society for Microbiology press, Washington, pp 139–236 Atlas RM, Philp J (2005) Bioremediation: applied aquifers. Applied microbial solutions for real-world environmental cleanup. American Society for Microbiology press, Washington, pp 139–236
106.
go back to reference Hong L, Banks M, Schwab A (2008) Removal of cyanide contaminants from rhizosphere soil. J Bioremediat 12(4):210–215 Hong L, Banks M, Schwab A (2008) Removal of cyanide contaminants from rhizosphere soil. J Bioremediat 12(4):210–215
113.
go back to reference Raymond RL, Hudson JO, Jamison VW (1976) Oil degradation in soil. Appl Environ Microbiol 31(4):522–535 Raymond RL, Hudson JO, Jamison VW (1976) Oil degradation in soil. Appl Environ Microbiol 31(4):522–535
114.
go back to reference Song HG, Bertha R (1990) Effects of jet fuel spills on the microbial community in soil. Appl Environ Microbiol 56(3):646–651 Song HG, Bertha R (1990) Effects of jet fuel spills on the microbial community in soil. Appl Environ Microbiol 56(3):646–651
119.
go back to reference Aichi M, Nishida I, Omata T (1998) Molecular cloning and characterization of a cDNA encoding cyanase from Arabidopsis thaliana. Plant Cell Physiol 39:135–135 Aichi M, Nishida I, Omata T (1998) Molecular cloning and characterization of a cDNA encoding cyanase from Arabidopsis thaliana. Plant Cell Physiol 39:135–135
120.
go back to reference Das S, Dash HR (2014) Microbial bioremediation: a potential tool for restoration of contaminated areas. In: Das S (ed) Microbial biodegradation and bioremediation. Elsevier Inc., Amsterdam, pp 1–21 Das S, Dash HR (2014) Microbial bioremediation: a potential tool for restoration of contaminated areas. In: Das S (ed) Microbial biodegradation and bioremediation. Elsevier Inc., Amsterdam, pp 1–21
121.
go back to reference Meyers PR, Gokool P, Rawlings DE et al (1991) An efficient cyanide-degrading Bacillus pumilus strain. J Microbiol 137(6):1397–1400 Meyers PR, Gokool P, Rawlings DE et al (1991) An efficient cyanide-degrading Bacillus pumilus strain. J Microbiol 137(6):1397–1400
122.
go back to reference Fedorak PM, Hrudey SE (1989) Cyanide transformation in anaerobic phenol-degradation methanogenic culture. Water Sci Technol 21:67–76 Fedorak PM, Hrudey SE (1989) Cyanide transformation in anaerobic phenol-degradation methanogenic culture. Water Sci Technol 21:67–76
131.
go back to reference Wang P, VanEtten HD (1992) Cloning and properties of a cyanide hydratase gene from the phytopathogenic fungus Gloeocercospora sorghi. Biochem Biophys Res Commun 187(2):1048–1054 Wang P, VanEtten HD (1992) Cloning and properties of a cyanide hydratase gene from the phytopathogenic fungus Gloeocercospora sorghi. Biochem Biophys Res Commun 187(2):1048–1054
133.
go back to reference Gurbuz F, Ciftci H, Akcil A (2009) Biodegradation of cyanide containing effluents by Scenedesmus obliquus. J Hazard Mater 162(1):74–79 Gurbuz F, Ciftci H, Akcil A (2009) Biodegradation of cyanide containing effluents by Scenedesmus obliquus. J Hazard Mater 162(1):74–79
134.
go back to reference Ebel M, Evangelou MW, Schaeffer A (2007) Cyanide phytoremediation by water hyacinths (Eichhornia crassipes). Chemosphere 66(5):816–823 Ebel M, Evangelou MW, Schaeffer A (2007) Cyanide phytoremediation by water hyacinths (Eichhornia crassipes). Chemosphere 66(5):816–823
135.
go back to reference Sankaranarayanan A, Gowthami M (2015) Cyanide degradation by consortium of bacterial species isolated from sago industry effluent. J Environ Treat Tech 3(1):41–46 Sankaranarayanan A, Gowthami M (2015) Cyanide degradation by consortium of bacterial species isolated from sago industry effluent. J Environ Treat Tech 3(1):41–46
136.
go back to reference Tiong B, Bahari ZM, Lee N et al (2015) Cyanide degradation by Pseudomonas pseudoalcaligenes strain W2 isolated from mining effluent. Sains Malays 44(2):233–238 Tiong B, Bahari ZM, Lee N et al (2015) Cyanide degradation by Pseudomonas pseudoalcaligenes strain W2 isolated from mining effluent. Sains Malays 44(2):233–238
Metadata
Title
Principles and methods of bio detoxification of cyanide contaminants
Authors
Anning Cosmos
Bat-Oyun Erdenekhuyag
Geng Yao
Huijuan Li
Jinggang Zhao
Wang Laijun
Xianjun Lyu
Publication date
17-03-2020
Publisher
Springer Japan
Published in
Journal of Material Cycles and Waste Management / Issue 4/2020
Print ISSN: 1438-4957
Electronic ISSN: 1611-8227
DOI
https://doi.org/10.1007/s10163-020-01013-6

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