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Articles

Industrial Cd-Contaminated Soil Bioaugmented with Absidia cylindrospora: Influence on the Mineralogical Speciation of Cadmium

Insight on Fungal Influence in Cadmium Mineralogical Speciation in a Contaminated-Soil Experiment

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Pages 890-900 | Received 10 Dec 2019, Accepted 07 Jul 2020, Published online: 25 Jul 2020

References

  • Abou-Shanab R-A. 2011. Bioremediation: new approaches and trends. In: Khan, MS, Zaidi, A, Goel, R, Musarrat, J, editors. Biomanagement of Metal-Contaminated Soils. Dordrecht: Springer Netherlands, p65–94.
  • Adamo P, Iavazzo P, Albanese S, Agrelli D, De Vivo B, Lima A. 2014. Bioavailability and soil-to-plant transfer factors as indicators of potentially toxic element contamination in agricultural soils. Sci Total Environ 500–501:11–22.
  • Adriano DC. 1986. Trace elements in the terrestrial environment. New York, NY: Springer.
  • Albert Q. 2019. Sélection de souches fongiques performantes dans la biosorption de 3 éléments traces métalliques (Cd, Cu et Pb) et étude de leur spéciation minéralogique en microcosme de sol. PhD dissertation, University of Normandy, Caen, France.
  • Albert Q, Baraud F, Leleyter L, Lemoine M, Heutte N, Rioult J-P, Sage L, Garon D. 2019. Use of soil fungi in the biosorption of three trace metals (Cd, Cu, Pb): promising candidates for treatment technology? Environ Technol 0(0):1–12.
  • Albert Q, Leleyter L, Lemoine M, Heutte N, Rioult J-P, Sage L, Baraud F, Garon D. 2018. Comparison of tolerance and biosorption of three trace metals (Cd, Cu, Pb) by the soil fungus Absidia cylindrospora. Chemosphere 196:386–392.
  • Ali H, Khan E, Sajad MA. 2013. Phytoremediation of heavy metals-concepts and applications. Chemosphere. 91(7):869–881.
  • Alloway BJ, editor. 2013. Heavy Metals in Soils. Dordrecht: Springer, Netherlands.
  • An. 2004. Soil ecotoxicity assessment using cadmium sensitive plants. Environ Pollut. 127(1):21–26.
  • Arwidsson Z, Johansson E, Kronhelm TV, Allard B, Hees PV. 2010. Remediation of metal contaminated soil by organic metabolites from fungi I—production of organic acids. Water Air Soil Pollut 205(1–4):215–226.
  • Ashford AE, Allaway WG. 2007. Motile tubular vacuole systems. In: Biology of the Fungal Cell. Berlin, Heidelberg: Springer, p49–86.
  • Baize D, Barriuso E, Blanca Y, Boulonne L, Briand O, Cabidoche YM, Caria G, Chéry P, Cluzeau D, Cousin I, et al. 2011. L’Etat des sols de France. Antoni, Arrouays, Bispo, Brossard, Le Bas, Stengel, Villanneau , editors. Paris: GIS Sol.
  • Baldrian P. 2003. Interactions of heavy metals with white-rot fungi. Enzyme Microb Technol 32(1):78–91.
  • Baraud F, Leleyter L. 2012. Prediction of phytoavailability of trace metals to plants: comparison between chemical extractions and soil-grown radish. CR Geosci 344(8):385–395. DOI : 10.1016/j.crte.2012.07.003
  • Baraud F, Leleyter L, Lemoine M, Hamdoun H. 2017. Cr in dredged marine sediments: Anthropogenic enrichment, bioavailability and potential adverse effects. Mar Pollut Bull 120(1–2):303–308.
  • Bernhoft RA. 2013. Cadmium toxicity and treatment. ScientificWorldJournal 2013:394652.
  • Bolan N, Kunhikrishnan A, Thangarajan R, Kumpiene J, Park J, Makino T, Kirkham MB, Scheckel K. 2014. Remediation of heavy metal(loid)s contaminated soils-to mobilize or to immobilize? J Hazard Mater 266:141–166.
  • Booth C. 1971. The Genus Fusarium. Kew, UK: Commonwealth Mycological Institute.
  • Bourceret A, Cébron A, Tisserant E, Poupin P, Bauda P, Beguiristain T, Leyval C. 2016. The bacterial and fungal diversity of an aged PAH- and heavy metal-contaminated soil is affected by plant cover and edaphic parameters. Microb Ecol 71(3):711–724.
  • Cabral M, Toure A, Garçon G, Diop C, Bouhsina S, Dewaele D, Cazier F, Courcot D, Tall-Dia A, Shirali P, et al. 2015. Effects of environmental cadmium and lead exposure on adults neighboring a discharge: Evidences of adverse health effects. Environ Pollut 206:247–255.
  • Carré F, Caudeville J, Bonnard R, Bert V, Boucard P, Ramel M. 2017. Soil contamination and human health: a major challenge for global soil security. In: Field DJ, Morgan CLS, McBratney AB, editors. Global Soil Security. Cham: Springer International Publishing, p275–295.
  • Cecchi G, Ceci A, Marescotti P, Persiani AM, Di Piazza S, Ballirano P, Mariotti MG, Zotti M. 2018. The geological roles played by microfungi in interaction with sulfide minerals from Libiola Mine, Liguria, Italy. Geomicrobiol J 35(7):564–569.
  • Chatterjee S, Sarma MK, Deb U, Steinhauser G, Walther C, Gupta DK. 2017. Mushrooms: from nutrition to mycoremediation. Environ Sci Pollut Res Int 24(24):19480–19493.
  • Chauhan A, Mittu B. 2015. Soil health - an issue of concern for environment and agriculture. J Bioremediat Biodegradat 6(3):1–4.
  • Choudhary M, Kumar R, Datta A, Nehra V, Garg N. 2017. Bioremediation of heavy metals by microbes. In: Bioremediation of Salt Affected Soils: An Indian Perspective. Cham: Springer, p233–255.
  • Danesh YR, Tajbakhsh M, Goltapeh EM, Varma A. 2013. Mycoremediation of Heavy Metals. In: Goltapeh EM, Danesh YR, Varma A, editors. Fungi as Bioremediators. Vol. 32. Berlin, Heidelberg: Springer Berlin Heidelberg, p245–267.
  • Davet P, Rouxel F. 1997. Détection et isolement des champignons du sol. Paris: Institut national de la recherche agronomique.
  • Din G, Hassan A, Rafiq M, Hasan F, Badshah M, Khan S, Chen G, Ripp S, Shah AA. 2020. Characterization of organic acid producing Aspergillus tubingensis FMS1 and its role in metals leaching from soil. Geomicrobiol J 37(4):336–344.
  • Domsch KH, Gams W, Anderson T-H. 1995. Compendium of Soil Fungi. Eching: Lubrecht & Cramer Ltd.
  • European Environment Agency 2015. L’environnement en Europe: état et perspectives 2015: synthèse. Luxembourg: Office des publications de l’Union européenne.
  • Faroon O, Ashizawa A, Wright S, Tucker P, Jenkins K, Ingerman L, Rudisill C. 2012. Toxicological Profile for Cadmium. Atlanta (GA): Agency for Toxic Substances and Disease Registry (US).
  • Fomina M, Gadd GM. 2014. Biosorption: current perspectives on concept, definition and application. Bioresour Technol. 160:3–14.
  • Gadd GM. 2007. Geomycology: biogeochemical transformations of rocks, minerals, metals and radionuclides by fungi, bioweathering and bioremediation. Mycol Res. 111(Pt 1):3–49.
  • Gadd GM. 2016. 5 Fungi and industrial pollutants. In: Environmental and Microbial Relationships. Cham: Springer, p99–125.
  • Gadd GM. 2017. Heavy metal pollutants: environmental and biotechnological aspects⋆. In: Reference Module in Life Sciences. University of Dundee. Dundee, UK: Elsevier, p331–334.
  • Garon D, Sage L, Wouessidjewe D, Seigle-Murandi F. 2004. Enhanced degradation of fluorene in soil slurry by Absidia cylindrospora and maltosyl-cyclodextrin. Chemosphere 56(2):159–166.
  • Glasauer SM, Beveridge TJ, Burford EP, Harper FA, Gadd GM. 2013. Metals and metalloids, transformation by microorganisms⋆. In: Hillel D, Rosenzweig C, Powlson DS, Scow KM, Singer MJ, Sparks DL, Hatfield J, editor. Reference Module in Earth Systems and Environmental Sciences. Amsterdam: Elsevier.
  • Goltapeh EM, Danesh YR, Varma A, editors. 2013. Fungi as Bioremediators. Berlin, Heidelberg: Springer, Berlin, Heidelberg.
  • Gube M. 2016. 4 Fungal molecular response to heavy metal stress. In: Biochemistry and Molecular Biology. Cham: Springer, p47–68.
  • Hamdoun H, Leleyter L, Van-Veen E, Coggan J, Basset B, Lemoine M, Baraud F. 2015. Comparison of three procedures (single, sequential and kinetic extractions) for mobility assessment of Cu, Pb and Zn in harbour sediments. CR Geosci. 347(2):94–102.
  • Hamdoun H, Van-Veen E, Basset B, Lemoine M, Coggan J, Leleyter L, Baraud F. 2015. Characterization of harbor sediments from the English Channel: assessment of heavy metal enrichment, biological effect and mobility. Mar Pollut Bull. 90(1–2):273–280.
  • He S, He Z, Yang X, Stoffella PJ, Baligar VC. 2015. Chapter four - soil biogeochemistry, plant physiology, and phytoremediation of cadmium-contaminated soils. In: Sparks DL, editor. Advances in Agronomy. Vol. 134. Newark, DE, USA: Academic Press, p135–225.
  • He Z, Shentu J, Yang X, Baligar V, Zhang T, Stoffella P. 2015. Heavy Metal Contamination of Soils: Sources, Indicators and Assessment. Journal of Environmental Indicators, 9, 17-18
  • Henderson L, Lilje E, Robinson K, Gleason FH, Lilje O. 2017. Chapter 30 effects of toxic metals on chytrids, fungal-like organisms, and higher fungi. In: Dighton J, White JF, editors. Mycology. Boca Raton, FL: CRC Press, p433–458.
  • ISO 10390:2005 - Soil quality – Determination of pH. Berlin: ISO Technical Comitee.
  • ISO 10693:1995 - Soil quality – Determination of carbonate content – Volumetric method. Berlin: ISO Technical Comitee.
  • ISO 14235:1998 - Soil quality – Determination of organic carbon by sulfochromic oxidation. Berlin: ISO Technical Comitee.
  • Khalid S, Shahid M, Niazi NK, Murtaza B, Bibi I, Dumat C. 2017. A comparison of technologies for remediation of heavy metal contaminated soils. J Geochem Explor. 182(Part B):247–268.
  • Khan MS, Zaidi A, Goel R, Musarrat J, editors. 2011. Biomanagement of Metal-Contaminated Soils. Dordrecht: Springer Netherlands.
  • Kisku G, Markandeya , Kushwaha H, Arora S, Kushwaha H, Arora S. 2016. Environmental health risk estimation of heavy metals accumulated in soil and cultivated plants irrigated with industrial effluents. Adv Recycl Waste Manage 1(1):1–8.
  • Klich MA. 2002. Biogeography of Aspergillus species in soil and litter. Mycologia. 94(1):21–27.
  • Kumari D, Qian X-Y, Pan X, Achal V, Li Q, Gadd GM. 2016. Chapter two - microbially-induced carbonate precipitation for immobilization of toxic metals. In: Gadd, GM, and Sariaslani, S, editor. Advances in Applied Microbiology. Vol. 94. Academic Press, Elsevier, p79–108.
  • Leleyter L, Probst J-L. 1999. A new sequential extraction procedure for the speciation of particulate trace elements in river sediments. Int J Env Anal Chem 73(2):109–128.
  • Leleyter L, Rousseau C, Biree L, Baraud F. 2012. Comparison of EDTA, HCl and sequential extraction procedures, for selected metals (Cu, Mn, Pb, Zn), in soils, riverine and marine sediments. J Geochem Explor 116–117:51–59.
  • Lestan D, Udovic M. 2011. Mobility and availability of toxic metals after soil washing with chelating agents. In: Khan MS, Zaidi A, Goel R, Musarrat J, editors. Biomanagement of Metal-Contaminated Soils. Dordrecht: Springer Netherlands, p343–364.
  • Li Q, Wu S, Liu G, Liao X, Deng X, Sun D, Hu Y, Huang Y. 2004. Simultaneous biosorption of cadmium (II) and lead (II) ions by pretreated biomass of Phanerochaete chrysosporium. Sep Purif Technol 34(1–3):135–142.
  • Li X, Wang Y, Pan Y, Yu H, Zhang X, Shen Y, Jiao S, Wu K, La G, Yuan Y, et al. 2017. Mechanisms of Cd and Cr removal and tolerance by macrofungus Pleurotus ostreatus HAU-2. J Hazard Mater 330:1–8.
  • Liu S-H, Zeng G-M, Niu Q-Y, Liu Y, Zhou L, Jiang L-H, Tan X, Xu P, Zhang C, Cheng M. 2017. Bioremediation mechanisms of combined pollution of PAHs and heavy metals by bacteria and fungi: a mini review. Bioresour Technol 224:25–33.
  • Livia de C, Mario H, Benedito C. 2015. Potential application of modified saccharomyces cerevisiae for removing lead and cadmium. J Bioremed Biodeg 06(06):1–5.
  • Llorens-Blanch G, Parladé E, Martinez-Alonso M, Gaju N, Caminal G, Blánquez P. 2018. A comparison between biostimulation and bioaugmentation in a solid treatment of anaerobic sludge: drug content and microbial evaluation. Waste Manag 72:206–217.
  • Martino E, Perotto S. 2010. Mineral transformations by Mycorrhizal Fungi. Geomicrobiol J 27(6–7):609–623.
  • NCBI. BLAST: Basic Local Alignment Search Tool. National Center for Biotechnology Information, U.S. National Library of Medicine, Bethesda MD, USA. https://blast.ncbi.nlm.nih.gov/Blast.cgi
  • Oves M, Saghir Khan M, Huda Qari A, Nadeen Felemban M, Almeelbi T. 2016. Heavy metals: biological importance and detoxification strategies. J Bioremed Biodeg. 07(02):1–15.
  • Peng W, Li X, Liu T, Liu Y, Ren J, Liang D, Fan W. 2018a. Biostabilization of cadmium contaminated sediments using indigenous sulfate reducing bacteria: efficiency and process. Chemosphere 201:697–707.
  • Peng W, Li X, Xiao S, Fan W. 2018b. Review of remediation technologies for sediments contaminated by heavy metals. J Soils Sediments 18(4):1701–1719.
  • Pitt JI. 1979. The Genus Penicillium and its Teleomorphic States Eupenicillium and Talaromyces. London; New York: Academic Press.
  • Pitt JI. 2000. A Laboratory Guide to Common Penicilliums Pecies. [place unknown]: Food Science Australia a Joint Venture of CSIRO and AFISC.
  • Qian G, Chen W, Lim TT, Chui P. 2009. In-situ stabilization of Pb, Zn, Cu, Cd and Ni in the multi-contaminated sediments with ferrihydrite and apatite composite additives. J Hazard Mater 170(2–3):1093–1100.
  • Renshaw JC, Robson GD, Trinci APJ, Wiebe MG, Livens FR, Collison D, Taylor RJ. 2002. Fungal siderophores: structures, functions and applications. Mycol Res 106(10):1123–1142.
  • Robert V, Vu D, Amor ABH, van de Wiele N, Brouwer C, Jabas B, Szoke S, Dridi A, Triki M, Daoud SB, et al. 2013. MycoBank gearing up for new horizons. IMA Fungus 4(2):371–379.
  • Robin A, Vansuyt G, Hinsinger P, Meyer JM, Briat JF, Lemanceau P. 2008. Chapter 4 iron dynamics in the rhizosphere: consequences for plant health and nutrition. In: Advances in Agronomy. Vol. 99. Newark DE, USA: Academic Press, p183–225.
  • Saussaye L. 2006. Soils treatment with hydraulic binders: geotechnical and physicochemical investigations of chemical disturbances. PhD dissertation, Université de Caen, Caen, France.
  • Schoch CL, Seifert KA, Huhndorf S, Robert V, Spouge JL, Levesque CA, Chen W, Bolchacova E, Voigt K, Crous PW, et al. 2012. Nuclear ribosomal internal transcribed spacer (ITS) region as a universal DNA barcode marker for Fungi. PNAS 109(16):6241–6246.
  • Singh A, Parmar N, Kuhad RC, editors. 2011. Bioaugmentation, Biostimulation and Biocontrol. Berlin, Heidelberg: Springer.
  • Singh H. 2006. Mycoremediation: Fungal Bioremediation. Hoboken, NJ: Wiley-Interscience.
  • Singh JS. 2015. Microbes: the chief ecological engineers in reinstating equilibrium in degraded ecosystems. Agric Ecosyst Environ 203:80–82.
  • Smits MM. 2009. Scale matters? Exploring the effect of scale on fungal–mineral interactions. Fungal Biol Rev 23(4):132–137.
  • Smolders E, Mertens J. 2013. Cadmium. In: Alloway BJ, editor. Heavy Metals in Soils. Vol. 22. Dordrecht: Springer Netherlands,p. 283–311.
  • Sonnleitner R, Schinner F. 2020. Impact of nitrate and ammonium on the solubilization of elements from sediments of Glacier Forefields on Siliceous and Calcareous Bedrock by Botrytis cinerea. Geomicrobiol J 37(6):497–510.
  • Sterflinger K. 2000. Fungi as geologic agents. Geomicrobiol J 17(2):97–124.
  • Stolte J, Tesfai M, Øygarden L, Kvaernø S, Keizer J, Verheijen F, Panagos P, Ballabio C, Hessel R, European Commission, et al. 2015. Soil Threats in Europe. Luxembourg: Publications Office.
  • Toju H, Tanabe AS, Yamamoto S, Sato H. 2012. High-coverage ITS primers for the DNA-based identification of ascomycetes and basidiomycetes in environmental samples. PLoS One. 7(7):e40863.
  • US EPA O 2014. Issue paper on the ecological effects of metals. US EPA [Internet]. Accessed June 20, 2017. Available at https://www.epa.gov/osa/issue-paper-ecological-effects-metals.
  • Vallee B-L, Ulmer D-D. 1972. Biochemical effects of Mercury, Cadmium, and Lead. Annu Rev Biochem 41(10):91–128.
  • Volesky B, Holan ZR. 1995. Biosorption of heavy metals. Biotechnol Prog 11(3):235–250.
  • Von Arx JA. 1974. The Genera of Fungi Sporulating in Pure Culture. V Cramer Editor. Michigan University.
  • Warcup JH. 1950. The soil-plate method for isolation of fungi from soil. Nature 166(4211):117–118.
  • Xu C, He S, Liu Y, Zhang W, Lu D. 2017. Bioadsorption and biostabilization of cadmium by Enterobacter cloacae TU. Chemosphere 173:622–629.
  • Young SD. 2013. Chemistry of heavy metals and metalloids in soils. In: Heavy Metals in Soils. Dordrecht: Springer,p51–95.
  • Zaidi A, Oves M, Ahmad E, Khan MS. 2011. Importance of free-living fungi in heavy metal remediation. In: Khan MS, Zaidi A, Goel R, Musarrat J, editors. Biomanagement of Metal-Contaminated Soils. Dordrecht: Springer Netherlands,p479–494.
  • Zhang X, Wang X, Wei D, Li B, Ma Y, Huang Z. 2013. The influence of soil solution properties on phytotoxicity of soil soluble copper in a wide range of soils. Geoderma 211–212:1–7.
  • Zotti M, Di Piazza S, Roccotiello E, Lucchetti G, Mariotti MG, Marescotti P. 2014. Microfungi in highly copper-contaminated soils from an abandoned Fe-Cu sulphide mine: growth responses, tolerance and bioaccumulation. Chemosphere 117:471–476.

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