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Research Articles

Bioleaching Potential of Microfungi Isolated from Arctic Loparite Ore Tailings (Kola Peninsula, Northwestern Russia)

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Pages 285-294 | Received 17 Jul 2022, Accepted 12 Dec 2022, Published online: 29 Dec 2022

References

  • Adeel M, Lee JY, Zain M, Rizwan M, Nawab A, Ahmad MA, Shafiq M, Yi H, Jilani G, Javed R, et al. 2019. Cryptic footprints of rare earth elements on natural resources and living organisms. Environ Int 127:785–800.
  • Alekseeva SA, Tereshchenko SV, Pavlishina DN, Rukhlenko ED. 2017. On the issue of loparite ore as a source of rare-metal and rare-earth elements and increasing its dressing efficiency. NFM 43:8–14.
  • Ali SH, Alias SA, Siang HY, Smykla J, Pang K-L, Guo S-Y, Convey P. 2013. Studies on diversity of soil microfungi in the Hornsund area, Spitsbergen. Polish Polar Res 34(1):39–54.
  • Amin MM, El-Aassy IE, El-Feky MG, Sallam AM, El-Sayed EM, Nada AA, Harpy NM. 2014. Fungal leaching of rare earth elements from lower carboniferous carbonaceous shales, southwestern Sinai, Egypt. Rom J Biophys 24:25–41.
  • Balaram V. 2019. Rare earth elements: a review of applications, occurrence, exploration, analysis, recycling, and environmental impact. Geosci Front 10(4):1285–1303.
  • Baniasadi M, Vakilchap F, Bahaloo-Horeh N, Mousavi SM, Farnaud S. 2019. Advances in bioleaching as a sustainable method for metal recovery from e-waste: a review. J Ind Eng Chem 76:75–90.
  • Bergero R, Girlanda M, Varese GC, Intili D, Luppi AM. 1999. Psychrooligotrophic fungi from Arctic soils of Franz Joseph Land. Polar Biol 21(6):361–368.
  • Brisson VL, Zhuang W-Q, Alvarez-Cohen L. 2016. Bioleaching of rare earth elements from monazite sand. Biotechnol Bioeng 113(2):339–348.
  • Brun S, Bouchara JP, Bocquel A, Basile AM, Contet-Audonneau N, Chabasse D. 2001. Evaluation of five commercial Sabouraud gentamicin-chloramphenicol agar media. Eur J Clin Microbiol Infect Dis 20(10):718–723.
  • Castro L, Blazquez ML, Gonzalez F, Munoz JA. 2020. Bioleaching of phosphate minerals using Aspergillus niger: Recovery of copper and rare earth elements. Metals 10(7):978.
  • Cecchi G, Ceci A, Marescotti P, Persiani AM, Di Piazza S, Zotti M. 2019. Interactions among microfungi and pyrite-chalcopyrite mineralizations: tolerance, mineral bioleaching, and metal bioaccumulation. Mycol Progress 18(3):415–423.
  • Das AP, Ghosh S. 2022. Role of microorganisms in extenuation of mining and industrial wastes. Geomicrobiol J 39(3–5):173–175.
  • Davet P, Rouxel F. 2000. Detection and Isolation of Soil Fungi. Enfield, NH: Science Publisher Inc.
  • Dev S, Sachan A, Dehghani F, Ghosh T, Briggs BR, Aggarwal S. 2020. Mechanisms of biological recovery of rare-earth elements from industrial and electronic wastes: a review. Chem Eng J 397:124596.
  • Domsch KH, Gams W, Anderson T-H. 2007. Compendium of Soil Fungi. Eching: IHW-Verlag.
  • Dusengemungu L, Kasali G, Gwanama C, Mubemba B. 2021. Overview of fungal bioleaching of metals. Environ Adv 5:100083.
  • Fomina M, Podgorsky VS, Olishevska SV, Kadoshnikov VM, Pisanska IR, Hillier S, Gadd G. 2007. Fungal deterioration of barrier concrete used in nuclear waste disposal. Geomicrobiol J 24(7–8):643–653.
  • Gadd GM, Rhee YJ, Stephenson K, Wei Z. 2012. Geomycology: metals, actinides and biominerals. Environ Microbiol Rep 4(3):270–296.
  • Goldman E, Green LH. 2015. Practical Handbook of Microbiology. Boca Raton, FL: CRC Press.
  • Granato GE. 2006. Kendall-Theil Robust Line (KTRLine version 1.0): A visual basic program for calculating and graphing robust nonparametric estimates of linear regression coefficients between two continuous variables. In: Kempthorne, D, Leahy, PP, editors. Techniques and Methods of the U.S. Geological Survey. Book 4, Chapter A7. Reston, VA: USGS, p1–31.
  • Grum-Grzhimaylo OA, Debets AJM, Bilanenko EN. 2018. Mosaic structure of the fungal community in the Kislo-Sladkoe Lake that is detaching from the White Sea. Polar Biol 41(10):2075–2089.
  • Gupta CK, Krishnamurthy N. 2005. Extractive Metallurgy of Rare Earths. Boca Raton, FL: CRC Press.
  • Hare JM. 2013. Sabouraud Agar for Fungal Growth. In: Gupta, VK, Tuohy, MG, Ayyachamy, M, Turner, KM, O’Donovan, A, editors. Laboratory Protocols in Fungal Biology. New York, NY: Springer, p211–216.
  • Hassanien WAG, Desouky OAN, Hussien SSE. 2013. Bioleaching of some rare earth elements from Egyptian monazite using Aspergillus ficuum and Pseudomonas aeruginosa. Walailak J Sci Technol 11:809–823.
  • Hayes MA. 2012. The Geomyces fungi: ecology and distribution. Biosci 62(9):819–823.
  • Horiike T, Yamashita M. 2015. A new fungal isolate, Penidiella sp. Strain T9, accumulates the rare earth element dysprosium. Appl Environ Microbiol 81(9):3062–3068.
  • Iliushin VA, Kirtsideli IY, Vlasov DY. 2022. Diversity of culturable microfungi of coal mine spoil tips in Svalbard. Polar Sci 32:100793.
  • Index Fungorum. 2022. [accessed 2022 Jun 13]. http://www.indexfungorum.org/names/Names.asp.
  • Janet I, Isaac O, Abigail O, Mary N, Ijeoma N. 2014. Utilization of food crop wastes for the formulation of laboratory media used for cultivating soil fungi. Glob J Microbiol Res 2:112–116.
  • Kang X, Csetenyi L, Gadd GM. 2019. Biotransformation of lanthanum by Aspergillus niger. Appl Microbiol Biotechnol 103(2):981–993.
  • Kangguo M, Xiuqin Z, Lin H, Fusuo Z, Wenji Z, Jianyu C. 2006. Toxicity of lanthanum to pathogenic fungi and its morphological characteristics. J Rare Earths 24:607–612.
  • Keekan KK, Jalondhara, JC, Abhilash  . 2017. Extraction of Ce and Th from monazite using REE tolerant Aspergillus niger. Min Proc Extr Metall Rev 38(5):312–320.
  • Korneykova MV, Redkina VV, Fokina NV, Myazin VA, Soshina AS. 2022. Soil microorganisms in the urban ecosystems of the Russian subarctic (Murmansk region, Apatity). Czech Polar Rep 11(2):333–351.
  • Krasavtseva E, Maksimova V, Makarov D. 2021. Conditions affecting the release of heavy and rare earth metals from the mine tailings Kola Subarctic. Toxics 9(7):163.
  • Kulikova NA, Perminova IV. 2021. Interactions between humic substances and microorganisms and their implications for nature-like bioremediation technologies. Molecules 26(9):2706.
  • Kurek E, Kornijjowicz-Kowalska T, Sjomka A, Melke J. 2007. Characteristics of soil filamentous fungi communities isolated from various micro-relief forms in the Arctic tundra (Bellsund region, Spitsbergen). Polar Res 28:57–73.
  • Mendes GO, Bahri-Esfahani J, Csetenyi L, Hillier S, George TS, Gadd GM. 2021. Chemical and physical mechanisms of fungal bioweathering of rock phosphate. Geomicrobiol J 38(5):384–394.
  • Mohapatra D, Rath SK, Mohapatra PK. 2022. Soil fungi for bioremediation of pesticide toxicants: a perspective. Geomicrobiol J 39:3–5.
  • Onofri S, Selbmann L, Zucconi L, Tosi S, Fenice M, Barreca D, Ruisi S. 2005. Studies on Antarctic fungi. Polarnet Tech Rep 1:49–52.
  • Ozerskaya SM, Ivanushkina NE, Kochkina GA, Fattakhova RN, Gilichinsky DA. 2004. Mycelial fungi in cryopegs. Int J Astrobiol 3(4):327–331.
  • Qu Y, Li H, Tian W, Wang X, Wang X, Jia X, Shi B, Song G, Tang Y. 2015. Leaching of valuable metals from red mud via batch and continuous processes by using fungi. Miner Eng 81:1–4.
  • Redkina VV, Korneykova MV, Shalygina RR. 2020. Microorganisms of the technogenic landscapes: the case of nepheline-containing sands, the Murmansk region. In: Frank-Kamenetskaya, OV, Vlasov, DY, Panova, EG, Lessovaia, SN, editors. Processes and phenomena on the boundary between biogenic and abiogenic nature. Lecture Notes in Earth System Sciences. Chapter 30. Cham, Switzerland: Springer, p561–579.
  • Robinson CH. 2001. Cold adaptation in Arctic and Antarctic fungi. New Phytol 151(2):341–353.
  • Sahariah BP, Chatterjee T. 2022. Bioremediation of mine tailings from Chhattisgarh, India. Geomicrobiol J 39(7):541–551.
  • Seh-Bardan BJ, Othman R, Wahid SA, Husin A, Sadegh-Zadeh F. 2012. Bioleaching of heavy metals from mine tailings by Aspergillus fumigatus. Bioremediat J 16(2):57–65.
  • Sharma M, Sharma M. 2011. Influence of culture media on mycelial growth and sporulation of some soil dermatophytes compared to their clinical isolates. J Microbiol Antimicrobials 3:196–200.
  • Shourie A, Vijayalakshmi U. 2022. Fungal diversity and its role in mycoremediation. Geomycrobiol J 39(3–5):426–444.
  • Singh SM, Singh SK, Yadav LS, Singh PN, Ravindra R. 2012. Filamentous soil fungi from Ny-Alesund, Spitsbergen, and screening for extracellular enzymes. Arctic 65(1):45–55.
  • Sonjak S, Frisvad JC, Gunde-Cimerman N. 2006. Penicillium microbiota in Arctic subglacial ice. Microb Ecol 52(2):207–216.
  • Sterflinger K, Tesei D, Zakharova K. 2012. Fungi in hot and cold deserts with particular reference to microcolonial fungi. Fungal Ecol 5(4):453–462.
  • Vakilchap F, Mousavi SM, Shojaosadati SA. 2016. Role of Aspergillus niger in recovery enhancement of valuable metals from produced red mud in Bayer process. Bioresour Technol 218:991–998.
  • Verma P, Verma RK, Rawat S. 2020. Diversity of fungi in different age series of iron ore mine overburden waste dumps in Chhattisgarh, central India. Adv Biores 11:108–116.
  • Visagie CM, Houbraken J, Frisvad JC, Hong SB, Klaassen CH, Perrone G, Seifert KA, Varga J, Yaguchi T, Samson RA. 2014. Identification and nomenclature of the genus Penicillium. Stud Mycol 78:343–371.
  • Wibowo MS, Singgih M, Julianti E, Radzali MD. 2017. Isolation and antibacterial activity of soil-derived fungi from Taman Botani Negara, Shah Alam, Malaysia. Acta Pharm Ind 42(1):18–24.
  • Xie HG. 1991. Research advancement on application of rare earth in agriculture. China Sci Bul 36:561–565.

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