730
Views
34
CrossRef citations to date
0
Altmetric
Articles

Ecofriendly Heavy Metal Stabilization: Microbial Induced Mineral Precipitation (MIMP) and Biomineralization for Heavy Metals within the Contaminated Soil by Indigenous Bacteria

, , , &
Pages 612-623 | Received 08 Jan 2019, Accepted 15 Mar 2019, Published online: 16 Apr 2019

Reference

  • Abatenh E, Gizaw B, Tsegaye Z, Wassie M. 2017. The role of microorganisms in bioremediation-A review. Open J Environ Biol 2(1):038–046.
  • Abo-El-Enein SA, Ali AH, Talkhan FN, Abdel-Gawwad HA. 2012. Utilization of microbial induced calcite precipitation for sand consolidation and mortar crack remediation. HBRC J 8(3):185–192.
  • Achal V, Pan X, Fu Q, Zhang D. 2012. Biomineralization based remediation of As(III) contaminated soil by Sporosarcina ginsengisoli. J Hazard Mater 201–202:178–184.
  • Angelovičová L, Lodenius M, Tulisalo E, Fazekašová D. 2014. Effect of heavy metals on soil enzyme activity at different field conditions in Middle Spis mining area (Slovakia). Bull Environ Contam Toxicol 93(6):670–675.
  • Arenas-Lago D, Andrade ML, Lago-Vila M, Rodríguez-Seijo A, Vega FA. 2014. Sequential extraction of heavy metals in soils from a copper mine: distribution in geochemical fractions. Geoderma 230–231:108–118.
  • Azad MAK, Amin L, Sidik NM. 2014. Genetically engineered organisms for bioremediation of pollutants in contaminated sites. Chin Sci Bull 59(8):703–714.
  • Bi C, Zhou Y, Chen Z, Jia J, Bao X. 2018. Heavy metals and lead isotopes in soils, road dust and leafy vegetables and health risks via vegetable consumption in the industrial areas of Shanghai, China. Sci Total Environ 619–620:1349–1357.
  • Burdock TJ, Brooks MS, Ghaly AE. 2011. A dehydrogenase activity test for monitoring the growth of Streptomyces Venezuelae in a nutrient rich medium. J Bioprocess Biotechniq 1:101.
  • CCME: Canadian Council of Ministers of the Environment. 2007. Canadian Soil Quality Guidelines for the protection of environmental and human health. Accessed January 3, 2019. Available at http://esdat.net/Environmental%20Standards/Canada/SOIL/rev_soil_summary_tbl_7.0_e.pdf.
  • Cuero RG. 1996. Enhanced heavy metal immobilization by a bacterial-chitosan complex in soil. Biotechnol Lett 18(5):511–514.
  • Cui H, Yang X, Xu L, Fan Y, Yi Q, Li R, Zhou J. 2017. Effects of goethite on the fractions of Cu, Cd, Pb, P and soil enzyme activity with hydroxyapatite in heavy metal-contaminated soil. RSC Adv 7(72):45869–45877.
  • Dell Anno A, Beolchini F, Rocchetti L, Luna GM, Danovaro R. 2012. High bacterial biodiversity increases degradation performance of hydrocarbons during bioremediation of contaminated harbor marine sediments. Environ Pollut 167:85–92.
  • Dermont G, Bergeron M, Mercier G, Richer-Laflèche M. 2008. Soil washing for metal removal: a review of physical/chemical technologies and field applications. J Hazard Mater 152(1):1–31.
  • Donangelo CM, Woodhouse LR, King SM, Viteri FE, King JC. 2002. Supplemental zinc lowers measures of iron status in young women with low iron reserves. J Nutr 132(7):1860–1864.
  • Dubey RC, Maheshwari DK. 2005. Practical Microbiology. New Delhi: S Chand and Company Ltd., p32–38.
  • Edelstein M, Ben-Hur M. 2018. Heavy metals and metalloids: sources, risks and strategies to reduce their accumulation in horticultural crops. Scientia Horticulturae 234:431–444.
  • Emenike CU, Jayanthi B, Agamuthu P, Fauziah SH. 2018. Biotransformation and removal of heavy metals: a review of phytoremediation and microbial remediation assessment on contaminated soil. Environ Rev 26(2):156–168.
  • Environmental fact sheet. 2013. Copper: health information summary, environmental fact sheet. New Hampshire Department of Environmental Services, ARD-EHP-9 2005. Accessed January 3, 2019. Available at http://des.nh.gov/organization/commissioner/pip/factsheets/ard/documents/ard-ehp-9.pdf.
  • Environmental Protection Act. 2011. Soil, ground water and sediment standards for use under Part XV.1 of the Environmental Protection Act. 2011. Accessed January 3, 2019. Available at https://www.ontario.ca/page/soil-ground-water-and-sediment-standards-use-under-part-xv1-environmental-protection-act.
  • EPA. 1990. Handbook on In Situ Treatment of Hazardous Waste-Contaminated Soil. Washington, D.C.: U.S. EPA.
  • Fosmire GJ. 1990. Zinc toxicity. Am J Clin Nutr 51(2):225–227.
  • Gall JE, Boyd RS, Rajakaruna N. 2015. Transfer of heavy metals through terrestrial food webs: a review. Environ Monit Assess 187(4):201.
  • Gupta A, Joia J, Sood A, Sood R, Sidhu C, Kaur G. 2016. Microbes as potential tool for remediation of heavy metals: a review. J Microb Biochem Technol 8:364–372.
  • Hemen S. 2011. Metal hyperaccumulation in plants: a review focusing on phytoremediation technology. J Env Sci Technol 4(2):118–138.
  • Hirota K, Aino K, Nodasaka Y, Yumoto I. 2013. Oceanobacillus indicireducens sp. nov., a facultative alkaliphile that reduces an indigo dye. Int J Syst Evol Microbiol 63(4):1437–1442.
  • Huston WM, Jennings MP, McEwan AG. 2002. The multicopper oxidase of Pseudomonas aeruginosa is a ferroxidase with a central role in iron acquisition. Mol Microbiol 45(6):1741–1750.
  • Imam SSA, Rajpoot IK, Gajjar B, Sachdeva A. 2016. Comparative study of heavy metal bioremediation in soil by Bacillus Subtilis and Saccharomyces Cerevisiae. Ind J Sci Technol 9(47):1–7.
  • Infante JC, De Arco RD, Angulo ME. 2014. Removal of lead, mercury and nickel using the yeast Saccharomyces cerevisiae. Rev Mvz Córdoba 19:4141–4149.
  • Jahan N, Idrees M, Zahid MT, Ali NM, Hussain M. 2016. Molecular identification and characterization of heavy metal resistant bacteria and their role in bioremediation of chromium. BMRJ 13(6):1–11.
  • Jain AN, Udayashankara TH, Lokesh KS. 2012. Review on bioremediation of heavy metals with-microbial isolates and amendments on soil residue. Int J Sci Res 6:2319–7064.
  • Jean J-S, Lee M-K, Wang S-M, Chattopadhyay P, Maity JP. 2008. Effects of inorganic nutrient levels on the biodegradation of benzene, toluene, and xylene (BTX) by Pseudomonas spp. in a laboratory porous media sand aquifer model. Bioresource Technol 99(16):7807–7815.
  • Jiang R, Wang M, Chen W, Li X. 2018. Ecological risk evaluation of combined pollution of herbicide siduron and heavy metals in soils. Sci Total Environ 626:1047–1056.
  • Juwarkar AA, Yadav SK. 2010. Bioaccumulation and biotransformation of heavy metals. In: Fulekar MH, editor. Bioremediation Technology, Dordrecht: Springer, p266–284.
  • Kandeler E, Gerber H. 1988. Short-term assay of soil urease activity using colorimetric determination of ammonium. Biol Fertil Soils 6(1):68–72.
  • Kostal J, Yang R, Wu CH, Mulchandani A, Chen W. 2004. Enhanced arsenic accumulation in engineered bacterial cells expressing ArsR. Appl Environ Microbiol 70(8):4582–4587.
  • Kumar A, Bisht BS, Joshi VD, Dhewa T. 2011. Review on bioremediation of polluted environment: a management tool. Int J Environ Sci 1:1079–1093.
  • Kumari D, Qian XY, Pan X, Achal V, Li Q, Gadd GM. 2016. Chapter Two-Microbially-induced carbonate precipitation for immobilization of toxic metals. Adv Appl Microbiol 94:79–108.
  • Li M, Cheng XH, Guo HX. 2013. Heavy metal removal by biomineralization of urease producing bacteria isolated from soil. Int Biodeterior Biodegrad 76:81–85.
  • Lin Y-T, Chien Y-C, Liang C. 2012. A laboratory treatability study for pilot-scale soil washing of Cr, Cu, Ni, and Zn contaminated soils. Environ Prog Sustainable Energy 31(3):351–360.
  • Liu CC, Maity JP, Jean JS, Li ZH, Kar S, Sracek O, Yang HJ, Chen CY, Reza A, Bundschuh J, et al. 2013. The geochemical characteristics of the mud liquids in the Wushanting and Hsiaokunshui Mud Volcano region in southern Taiwan: implications of humic substances for binding and mobilization of arsenic. J Geochem Expl 128:62–71.
  • Maciel BM, Dias JC, Dos Santos AC, Filho RC, Fontana R, Loguercio LL, Rezende RP. 2007. Microbial surfactant activities from a petrochemical landfarm in a humid tropical region of Brazil. Can J Microbiol 53(8):937–943.
  • Maity JP, Liu CC, Nath B, Bundschuh J, Kar S, Jean JS, Bhattacharya P, Liu JH, Atla SB, Chen CY. 2011. Biogeochemical characteristics of Kuan-Tzu-Ling, Chung-Lun and Bao-Lai hot springs in southern Taiwan. J Env Sci Health, Part A Toxic/Hazardous Subs Env Eng 46(11):1207–1217.
  • Maity JP, Huang YM, Fan CW, Chen CC, Li CY, Hsu CM, Chang YF, Wu CI, Chen CY, Jean JS. 2013. Evaluation of remediation process with soapberry derived saponin for removal of heavy metals from contaminated soils in Hai-Pu, Taiwan. J Environ Sci 25(6):1180–1185.
  • Maity JP, Huang YM, Hsu CM, Wu CI, Chen CC, Li CY, Jean JS, Chang YF, Chen CY. 2013. Removal of Cu, Pb and Zn by foam fractionation and a soil washing process from contaminated industrial soils using soapberry-derived saponin: a comparative effectiveness assessment. Chemosphere 92(10):1286–1293.
  • Maity JP, Kar S, Liu JH, Jean JS, Chen CY, Bundschuh J, Santra SC, Liu CC. 2011. The potential for reductive mobilization of arsenic [As(V) to As(III)] by OSBH2 (Pseudomonas stutzeri) and OSBH5 (Bacillus cereus) in an oil-contaminated site. J Env Sci Health, Part A Toxic/Hazardous Subs Env Eng 46(11):1239–1246.
  • McLean JE, McNeill LS, Edwards AM, Parks JL. 2012. Hexavalent chromium review: Part 1 - Health Effects, Regulations, and Analysis. J Am Water Works Assoc 104(6):E348–E357.
  • Medas D, Meneghini C, Podda F, Floris C, Casu M, Casu MA, Musu E, De Giudici G. 2018. Structure of low-order hemimorphite produced in a Zn-rich environment by cyanobacterium Leptolingbya frigida. Am Mineralogist 103(5):711–719.
  • Medas D, Podda F, Meneghini C, De Giudici G. 2017. Stability of biological and inorganic hemimorphite: implications for hemimorphite precipitation in non-sulfide Zn deposits. Ore Geology Rev 89:808–821.
  • MEP. 1995. Environmental Quality Standard for Soils. (in Chinese). Beijing, China: Ministry of Environmental Protection of the People’s Republic of China.
  • Montagnolli RN, Matos Lopes PR, Bidoia ED. 2015. Assessing Bacillus subtilis biosurfactant effects on the biodegradation of petroleum products. Environ Monit Assess 187:1–17.
  • Mujah D, Shahin MA, Cheng L. 2017. State-of-the-Art review of biocementation by Microbially Induced Calcite Precipitation (MICP) for soil stabilization. Geomicrobiol J 34(6):524–537.
  • Priest FG. 1993. Systematics and Ecology of Bacillus. In: Sonenshein AL, Hoch JA, Losick R, editors. Bacillus subtilis and other Gram-Positive Bacteria: Biochemistry, Physiology, and Molecular Genetics. Washington D.C.: ASM Press, p3–16.
  • Ruparelia JP, Chatterjee AK, Duttagupta SP, Mukherji S. 2008. Strain specificity in antimicrobial activity of silver and copper nanoparticles. Acta Biomater 4(3):707–716.
  • Sharma S. 2012. Bioremediation: features, strategies and applications. Asian J Pharm Life Sci 2:202–213.
  • Song YC, Sivakumar S, Nguyen TT, Kim SH, Kim BG. 2009. The immobilization of heavy metals in biosolids using phosphate amendments–comparison of EPA (6010 and 3051) and selective sequential extraction methods. J Hazard Mater 167(1–3):1033–1037.
  • Stern BR. 2010. Essentiality and toxicity in copper health risk assessment: overview, update and regulatory considerations. J Toxicol Environ Health Part A 73(2):114–127.
  • Stevenson IL. 1959. Dehydrogenase activity in soils. Can J Microbiol 5(2):229–235.
  • Taghlidabad RH, Sepehr E. 2018. Heavy metals immobilization in contaminated soil by grape-pruning-residue biochar. Arch Agro Soil Sci 64(8):1041–1052.
  • Tessier A, Campbell PGC, Bisson M. 1979. Sequential extraction procedure for the speciation of particulate trace metals. Anal Chem 51(7):844–851.
  • Tseng CH, Lei C, Chen YC. 2018. Evaluating the health costs of oral hexavalent chromium exposure from water pollution: a case study in Taiwan. J Cleaner Produc 172:819–826.
  • Upadhyay N, Vishwakarma K, Singh J, Mishra M, Kumar V, Rani R, Mishra RK, Chauhan DK, Tripathi DK, Sharma S. 2017. Tolerance and reduction of Chromium(VI) by Bacillus sp. MNU16 isolated from contaminated coal mining soil. Front Plant Sci 8(778):778–713.
  • Valipour M, Shahbazi K, Khanmirzaei A. 2016. Chemical immobilization of lead, cadmium, copper, and nickel in contaminated soils by phosphate amendments. Clean Soil Air Water 44(5):572–578.
  • Vigneri R, Malandrino P, Gianì F, Russo M, Vigneri P. 2017. Heavy metals in the volcanic environment and thyroid cancer. Mol Cell Endocrinol 457:73–80.
  • Vu CT, Lin C, Shern CC, Yeh G, Le VG, Tran HT. 2017. Contamination, ecological risk and source apportionment of heavy metals in sediments and water of a contaminated river in Taiwan. Ecol Indic 82:32–42.
  • Walkley A, Black IA. 1934. An examination of the Degjareff method for determining SOM and a proposed modification of the chromic acid titration method. Soil Sci 37(1):29–38.
  • Wang T, Sun H, Mao H, Zhang Y, Wang C, Zhang Z, Wang B, Sun L. 2014. The immobilization of heavy metals in soil by bioaugmentation of a UV-mutant Bacillus subtilis 38 assisted by NovoGro biostimulation and changes of soil microbial community. J Hazard Mater 278:483–490.
  • Wiatrowska K, Komisarek J, Dłużewski P. 2015. Effects of heavy metals on the activity of dehydrogenases, phosphatases and urease in naturally and artificially contaminated soils. J Elementol 20(3):743–756.
  • Wu W, Wu P, Yang F, Sun D, Zhang D, Zhou Y. 2018. Assessment of heavy metal pollution and human health risks in urban soils around an electronics manufacturing facility. Sci Total Environ 630:53–61.
  • Young KD. 2006. The selective value of bacterial shape. Microbiol Mol Biol Rev 70(3):660–703.
  • Yunus FN, Malik H, Hadi S, Shahzad MI, Irfan M, Ali S, Muhammad A. 2017. Isolation and identification of protease enzyme producing Bacillus subtilis from soil. PSM Microbiol 2(1):15–19.
  • Wapnir RA, Balkman C. 1991. Inhibition of copper absorption by zinc. Effect of histidine. Biol Trace Elem Res 29(3):193–202.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.