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Original Articles

Metal ions removal from different type of industrial effluents using Spirulina platensis biomass

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References

  • Aksu Z. 2002. Determination of the equilibrium, kinetic and thermodynamic parameters of the batch biosorption of nickel(II) ions onto Chlorella vulgaris. Process Biochem. 38(1):89–99. doi:10.1016/S0032-9592(02)00051-1.
  • Albadarin, AB, Al-Muhtaseb, AH, Al-Laqtah, NA, Walker, GM, Allen, SJ, Ahmad, MN. 2011. Biosorption of toxic chromium from aqueous phase by lignin: mechanism, effect of other metal ions and salts. Chem Eng J. 169(1-3):20–30. doi:10.1016/j.cej.2011.02.044.
  • Anah L, Astrini N. 2017. Influence of pH on Cr (VI) ions removal from aqueous solutions using carboxymethyl cellulose-based hydrogel as adsorbent. IOP Conf Ser Earth Environ Sci. 60:01201. doi:10.1088/1755-1315/60/1/012010.
  • Aneja RK, Chaudhary G, Ahluwalia SS, Goyal D. 2010. Biosorption of Pb and Zn by non-living biomass of Spirulina sp. Indian J Microbiol. 50(4):438–442. doi:10.1007/s12088-011-0091-8.
  • Barakat MA. 2011. New trends in removing heavy metals from industrial wastewater. Arab J Chem. 4(4):361–377. doi:10.1016/j.arabjc.2010.07.019.
  • Bhattacharyya KG, Gupta SS. 2006. Adsorption of Fe(III) from water by natural and acid activated clays: studies on equilibrium isotherm, kinetics and thermodynamics of interactions. Adsorption. 12(3):185–204. doi:10.1007/s10450-006-0145-0.
  • Bisht R, Agarwal M, Singh K. 2016. Heavy metal removal from wastewater using various adsorbents: a review. J Water Reuse Desalin. 7:387–419. doi:10.2166/wrd.2016.104.
  • Castro L, Blázquez ML, González F, Muñoz JA, Antonio Ballester A. 2018. Heavy metal adsorption using biogenic iron compounds. Hydrometallurgy. 179:44–51. doi:10.1016/j.hydromet.2018.05.029.
  • Chan A, Salsali H, McBean E. 2014. Heavy metal removal (copper and zinc) in secondary effluent from wastewater treatment plants by microalgae. ACS Sustainable Chem Eng. 2(2):130–137. doi:10.1021/sc400289z.
  • Chan SS, Chow H, Wong MH. 1991. Microalgae as bioabsorbents for treating mixture of electroplating and sewage effluent. Biomed Environ Sci. 4(3):250–261.
  • Chojnacka K. 2010. Biosorption and bioaccumulation – the prospects for practical applications. Environ Int. 36(3):299–307. doi:10.1016/j.envint.2009.12.001.
  • Corder SL, Reeves M. 1994. Biosorption of nickel in complex aqueous waste streams by cyanobacteria. Appl Biochem Biotechnol. 45–46:847–859. doi:10.1007/BF02941854.
  • Crini G, Lichtfouse E, Wilson LD, Morin-Crini N. 2018. Conventional and non-conventional adsorbents for wastewater treatment. Environ Chem Lett. 13:1–19. doi:10.1007/s10311-018-0786-8.
  • Diep P, Mahadevan R, Yakunin AF. 2018. Heavy metal removal by bioaccumulation using genetically engineered microorganisms. Front Bioeng Biotechnol. 6:157. doi:10.3389/fbioe.2018.00157.
  • Donmez GC, Aksu Z, Ozturk A, Kutsal T. 1999. A comparative study on heavy metal biosorption characteristics of some algae. Process Biochem. 34:885–892. doi:10.1016/S0032-9592(99)00005-9.
  • El-Bestawy E. 2008. Treatment of mixed domestic–industrial wastewater using cyanobacteria. J Ind Microbiol Biotechnol. 35(11):1503–1516. doi:10.1007/s10295-008-0452-4.
  • El-Sheekh MM, El-Shouny WA, Osman MEH, El-Gammal E. 2005. Growth and heavy metals wastewater effluents. Environ Toxicol Pharmacol. 19(2):357–365. doi:10.1016/j.etap.2004.09.005.
  • Essahale A, Malki M, Marın I, Moumn M. 2012. Hexavalent chromium reduction and accumulation by Acinetobacter AB1 isolated from fez tanneries in Morocco. Indian J Microbiol. 52(1):48–53. doi:10.1007/s12088-011-0187-1.
  • Frontasyeva, MV. 2011. Neutron activation analysis in the life sciences. Phys Part Nuclei. 42(2):332–378. doi:10.1134/S1063779611020043.
  • Fu F, Wang Q. 2011. Removal of heavy metal ions from wastewaters: a review. J. Environ Manag. 92(3):407–418. doi:10.1016/j.jenvman.2010.11.011.
  • García-Sosa, I, Cabral-Prieto, A, Nava, N, Navarrete, J, Olguín, M T, Escobar, L, López-Castañares, R, Olea-Cardoso, O. 2015. Sorption of chromium (VI) by Mg/Fe hydrotalcite type compunds. Hyperfine Interact. 232(1-3):67–75. doi:10.1007/s10751-014-1117-5.
  • Hu Q. 2004. Industrial production of microalgal cell mass and secondaryproducts – major industrial species: Arthrospira (Spirulina) platensis. In: Richmond A, editor. Handbook of microalgal culture: biotechnology and applied phycology. Oxford (England): Blackwell Science Ltd. p. 264–272.
  • Jagiełło M, Minta E, Chojnacka K, Kafarski P. 2006. Mode of biosorption of chromium (III) by spirulina species cells from aqueous solutions. Water Environ. Res. 78(7):740–743. doi:10.2175/106143005X72885.
  • Jaishankar M, Tseten T, Anbalagan N, Mathew BB, Beeregow KN. 2014. Toxicity, mechanism and health effects of some heavy metals. Interdiscip Toxicol. 7(2):60–72. doi:10.2478/intox-2014-0009.
  • Järup L. 2003. Hazards of heavy metal contamination. Br Med Bull. 68:167–182. doi:10.1093/bmb/ldg032.
  • Javanbakht V, Alavi SA, Zilouei H. 2014. Mechanisms of heavy metal removal using microorganisms as biosorbent. Water Sci Technol. 69(9):1775–1787. doi:10.2166/wst.2013.718.
  • Kobielska PA, Howarth AJ, Farha OK, Nayak S. 2018. Metal–organic frameworks for heavy metal removal from water. Coordin Chem Rev. 358:92–107. doi:10.1016/j.ccr.2017.12.010.
  • López-Maury L, Giner-Lamia J, Florencio FJ. 2012. Redox control of copper homeostasis in cyanobacteria. Plant Signal Behav. 7(12):1712–1714. doi:10.4161/psb.22323.
  • Michalak I, Chojnacka K, Witek-Krowiak A. 2013. State of the art for the biosorption process - a review. Appl Biochem Biotechnol. 170(6):1389–1416. doi:10.1007/s12010-013-0269-0.
  • Nalimova AA, Popova VV, Tsoglin LN, Pronina NA. 2005. The effects of copper and zinc on Spirulina platensis growth and heavy metal accumulation in its cells. Russ J Plant Physiol. 52(2):229–234
  • Pahlavanzadeh H, Keshtkar AR, Safdari J, Abadi Z. 2010. Biosorption of nickel(II) from aqueous solution by brown algae: equilibrium, dynamic and thermodynamic studies. J Hazard Mater. 175(1–3):304–310. doi:10.1016/j.jhazmat.2009.10.004.
  • Pal A, Wauters G, Paul AK. 2007. Nickel tolerance and accumulation by bacteria from rhizosphere of nickel hyper accumulators in serpentine soil ecosystem of Andaman, India. Plant Soil. 293(1–2):37–48. doi:10.1007/s11104-007-9195-7.
  • Rodrigues MS, Ferreira LS, de Carvalho JC, Lodi A, Finocchio E, Converti A. 2012. Metal biosorption onto dry biomass of Arthrospira (Spirulina) platensis and Chlorella vulgaris: multi-metal systems. J Hazard Mater. 30:217–218. doi:10.1016/j.jhazmat.2012.03.022.
  • Russell JB, Dombrowski DB. 1980. Effect of pH on the efficiency of growth by pure cultures of rumen bacteria in continuous culture. Appl Environ Microbiol. 39(3):604–610.
  • Ruta LL, Kissen R, Nicolau I, Neagoe AD, Petrescu AJ, Bones AM, Farcasanu IC. 2017. Heavy metal accumulation by Saccharomyces cerevisiae cells armed with metal binding hexapeptides targeted to the inner faceof the plasma membrane. Appl Microbiol Biotechnol. 101(14):5749–5763. doi:10.1007/s00253-017-8335-0.
  • Wani R, Kodam KM, Gawai KR, Dhakephalkar PK. 2007. Chromate reduction by Burkholderia cepacia MCMB-821, isolated from the pristine habitat of alkaline Crater Lake. Appl Microbiol Biotechnol. 75:627–632. doi:10.1007/s00253-007-0862-7.
  • Zaretkaia е, Mazo V. 2004. Distribution of essential microelements in the fractions of the biomass of food microalgae Spirulina platensis. Voprosi Pitania. 2:28–31.
  • Zarrouk, C. 1966. Contribution à l’étuded’unecyanophycée Influence de Divers Facteurs Physiques et Chimiques Sur la Croissance et la Photosynthèse de Spirulina maxima Ph.D Thesis Université De Paris Paris (in French)
  • Zinicovscaia I, Cepoi L, Chiriac T, Rudi L, Culicov OA, Frontasyeva MV, Pavlov S, Kirkesali E, Gundorina S, Mitina T, et al. 2016. Spirulina platensis as biosorbent of chromium and nickel from wastewaters. Desalin Water Treat. 57(24):11103–11110. doi:10.1080/19443994.2015.1042061.
  • Zinicovscaia I, Duca G, Rudic V, Cepoi L, Chiriac T, Frontasyeva MV, Pavlov SS, Gundorina SF. 2013. Spirulina platensis as biosorbent of zinc in water. Environ Eng Manag J. 12(5):1079–1084. doi:10.30638/eemj.2013.132.
  • Zinicovscaia I, Safonov A, Troshkina I, Ilin V, Demina L, German K. 2018. Biosorption of Re(VII) from aqueous solutions by cyanobacteria Spirulina platensis. Clean Soil Air Water. 46(7):1700576. doi:10.1002/clen.201700576.
  • Zinicovscaia I, Yushin N, Gundorina S, Demcák Š, Frontasyeva M, Kamanina I. 2018. Biosorption of nickel from model solutions and electroplating industrial effluent using cyanobacteria Spirulina platensis. Desalin Water Treat. 120:158–165. doi:10.5004/dwt.2018.22691.
  • Zinicovscaia I, Yushin N, Shvetsova M, Frontasyeva M. 2018c. Zinc removal from model solution and wastewater by Spirulina platensis biomass. Int J Phytoremediation. 20(9):901–908. doi:10.1080/15226514.2018.1448358.

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