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Phanerochaete Chrysosporium Loaded Cryogel Column for Biosorption of Mercury II Ions from Aqueous Solutions ​

Year 2016, Volume: 44 Issue: 1, 77 - 86, 01.03.2016

Abstract

The focus of present study was to evaluate the potential of Phanerochaete chrysosporium loaded monolithic composite cryogel columns for the removal of Hg2+ ions from aqueous environments. The swelling degree of the composite column was 6.68 g H2O/g whereas the plain cryogel column was observed as 7.12 g H2O/g. Optimum working conditions for the column were determined. The reuse of the column was investigated and the results showed that this specific column can be used heaps of times with observing no decrement the Hg2+ biosorption capacity significantly. Synthetic wastewater studies were also applied and the biosorption capacity for Hg2+ was 75.22 mg/g.

References

  • P.A. Ariya, M. Amyot, A. Dastoor, D. Deeds, A. Feinberg, G. Kos, A. Poulain, A. Ryjkov, K. Semeniuk, M. Subir, K. Toyota, Mercury physicochemical and biogeochemical transformation in the atmosphere and at atmospheric interfaces: A review and future directions, Chem. Rev., 115 (2015) 3760-3802.
  • C.T. Driscoll, Y.-J. Han, C.Y. Chen, D.C. Evers, K.F. Lambert, T. M. Holsen, N.C. Kamman, R.K. Munson, Mercury contamination in forest and freshwater ecosystems in the Northeastern United States, BioScience, 57 (2007) 17–28.
  • B.M. Johnson, J.M. Lepak, B.A. Wolff, Effects of prey assemblage on mercury bioaccumulation in a piscivorous sport Şsh, Sci. Total Environ., 506–507 (2015) 330–337.
  • H. Yavuz, A. Denizli, H. Güngüneş¸ M. Safarikova, I. Safarik, Biosorption of mercury on magnetically modiŞed yeast cells, Sep. Purif. Technol., 52 (2006) 253–260.
  • F. Veglio’, F. Beolchini, Removal of metals by biosorption: A review, Hydrometallurgy, 44 (1997) 301-316. pollution?, Int. Microbiol., 3 (2000) 17-24.
  • Y. Kaçar, Ç. Arpa¸ S. Tan, A. Denizli, Ö. Genç, M.Y. Arıca, Biosorption of Hg(II) and Cd(II) from aqueous solutions: comparison of biosorptive capacity of alginate and immobilized live and heat inactivated Phanerochaete chrysosporium, Process. Biochem., 37 (2002) 601–610.
  • A. Kapoor, T. Viraraghavan, D.R. Cullimore, Removal of heavy metals using the fungus Aspergillus niger, Bioresource Technol., 70 (1999) 95-104.
  • C.P. Huang, D. Westman, K. Quirk, J.P. Huang, The removal of cadmium(II) from dilute aqueous solution by fungal adsorbent, Water Sci. and Technol., 20 (1988) 369-376.
  • M. Andaç, A. Denizli, Affinity-recognition-based polymeric cryogels for protein depletion studies, RSC Adv., 4 (2014) 31130-31141.
  • F.M. Plieva, I.Y. Galaev, W. Noppe, B. Mattiasson, Cryogel applications in microbiology, Trends in Microbiol., 16 (2008) 543–551.
  • E. Jain, A. Kumar, Disposable polymeric cryogel bioreactor matrix for therapeutic protein production, Nat. Protoc., 8 (2013) 821–835.
  • N. Bereli, Y. Saylan, L. Uzun, R. Say, A. Denizli, L-Histidine imprinted supermacroporous cryogels for protein recognition, Sep. Purif. Technol., 82 (2011) 28–35.
  • V.I. Lozinsky, I.Y. Galaev, F.M. Plieva, I.N. Savina, H. Jungvid, B. Mattiasson, Polymeric cryogels as promising materials of biotechnological interest, Trends in Biotechnol., 21 (2003) 445-451.
  • P. Arvidsson, F.M. Plieva, V.I. Lozinsky, I.Y. Galaev, B. Mattiasson, Direct chromatographic capture of enzyme from crude homogenate using immobilized metal affinity chromatography on a continuous supermacroporous adsorbent, J. Chromatogr. A, 986 (2003) 275–290.
  • L. Uzun, C. Armutcu, Ö. Biçen, A. Ersöz, R. Say, A. Denizli, Simultaneous depletion of immunoglobulin G and albumin from human plasma using novel monolithic cryogel columns, Colloids Surf. B, 112 (2013) 1–8.
  • M. Iqbal, R.G.J. Edyvean, Biosorption of lead, copper and zinc ions on loofa sponge immobilized biomass of Phanerochaete chrysosporium, Miner. Eng., 17 (2004) 217–223.
  • S. Al-Asheh, Z. Duvnjak, Adsorption of Copper and Chromium by Aspergillus carbonarius, Biotechnol. Prog., 11 (1995) 638–642.
  • J.M. Tobin, C. White, G.M. Gadd, Metal accumulation by fungi: application in environmental biotechnology, J. Ind. Microbiol., 13 (1994) 126–130.
  • M.Z. Hu, J.M. Norman, B.D. Faison, M.E. Reeves, Biosorption of uranium by pseudomonas aeruginosa strain CSU: Characterization and comparison studies, Biotechnol. Bioeng., 51 (1996) 237–247.
  • P.R. Puranik, K.M. Paknikar, Biosorption of lead, cadmium, and zinc by citrobacter strain MCM B-181: Characterization studies, Biotechnol. Prog., 15 (1999) 228–237.
  • E. Pehlivan, B.H. Yanık, G. Ahmetli, M. Pehlivan, Equilibrium isotherm studies for the uptake of cadmium and lead ions onto sugar beet pulp, Bioresource Technol., 99 (2008) 3520–3527.
  • M. Šafaríková, L. Ptáková, I. Kibriková, I. Šafarík, Biosorption of water-soluble dyes on magnetically modified Saccharomyces cerevisiae subsp. uvarum cells, Chemosphere, 59 (2005) 831–835.
  • M.Y. Arıca, Ç. Arpa, B. Kaya, S. Bektaş, A. Denizli, Ö. Genç, Comparative biosorption of mercuric ions from aquatic systems by immobilized live and heat- inactivated Trametes versicolor and Pleurotus sajur- caju, Bioresource Technol., 89 (2003) 145–154.
  • S. Büyüktiryaki, R. Say, A. Ersöz, E. Birlik, A. Denizli, Selective preconcentration of thorium in the presence of UO22+, Ce3+ and La3+ using Th(IV)-imprinted polymer, Talanta, 67 (2005) 640–645.
  • M. Karataş, S. Akgöl, H. Yavuz, R. Say, A. Denizli, Immunoglobulin G depletion from human serum with metal-chelated beads under magnetic field, Int. J. Biol. Macromol., 40 (2007) 254–260.
  • J. Wu, H.Q. Yu, Biosorption of 2,4-dichlorophenol from aqueous solutions by immobilized Phanerochaete chrysosporium biomass in a fixed-bed column, Chem. Eng. J., 138 (2008) 128–135.
  • J. Cruz-Olivares, C. Pérez-Alonso, C. Barrera-Díaz, F. Ureña-Nuñez, M.C. Chaparro-Mercado, B. Bilyeu, Modeling of lead (II) biosorption by residue of allspice in a fixed-bed column, Chem. Eng. J., 228 (2013) 21–27.
  • İ. Koç, G. Baydemir, E. Bayram, H. Yavuz, A. Denizli, Selective removal of 17β-estradiol with molecularly imprinted particle-embedded cryogel systems, J. Hazard. Mater. 192 (2011) 1819–1826.
  • F.M. Plieva, M. Karlsson, M.R. Aguilar, D. Gomez, S. Mikhalovsky, I.Y. Galaev, Pore structure in supermacroporous polyacrylamide based cryogels, Soft Matter, 1 (2005) 303-309.
  • D. Bulgariu, L. Bulgariu, Equilibrium and kinetics studies of heavy metal ions biosorption on green algae waste biomass, Bioresource Technol., 103 (2012) 489–493.
  • Y.A. Yahaya, M.M. Don, Pycnoporus sanguineus as Potential Biosorbent for Heavy Metal Removal from Aqueous Solution: A Review, J. Phys. Sci., 25 (2014) 1–32.
  • M. Fomina, G.M. Gadd, Biosorption: current perspectives on concept, definition and application, Bioresource Technol., 160 (2014) 3–14.

Sulu Çözeltilerden Civa Biyosorpsiyonu için Phanerochaete Chrysosporium Yüklü Kriyojel Kolon

Year 2016, Volume: 44 Issue: 1, 77 - 86, 01.03.2016

Abstract

Bu çalışmanın amacı, Phanerochaete chrysosporium yüklü mololitik kompozit kriyojel kolonlarla sulu ortamlardan Hg2+ iyonlarının uzaklaştırılma potansiyelini araştırmaktır. Yüklü olmayankolonun şişme derecesi 7.12 g HO/g iken kompozit kolonun şişme derecesi 6.68 g HO/g’dır. Kolonun optimum çalışma koşulları belirlenmiştir. Kolonun tekrar kullanılabilirliği incelenmiş ve sonuçlar bu özgül kolonun Hg2+ biyosorpsiyon kapasitesinde önemli bir azalma gözlenmeden defalarca kullanılabileceğini göstermiştir. Yapay atık su çalışmaları da uygulanmış ve bu sistem için Hg2+ için biyosorpsiyon kapasitesi 75.22 mg/g olarak bulunmuştur

References

  • P.A. Ariya, M. Amyot, A. Dastoor, D. Deeds, A. Feinberg, G. Kos, A. Poulain, A. Ryjkov, K. Semeniuk, M. Subir, K. Toyota, Mercury physicochemical and biogeochemical transformation in the atmosphere and at atmospheric interfaces: A review and future directions, Chem. Rev., 115 (2015) 3760-3802.
  • C.T. Driscoll, Y.-J. Han, C.Y. Chen, D.C. Evers, K.F. Lambert, T. M. Holsen, N.C. Kamman, R.K. Munson, Mercury contamination in forest and freshwater ecosystems in the Northeastern United States, BioScience, 57 (2007) 17–28.
  • B.M. Johnson, J.M. Lepak, B.A. Wolff, Effects of prey assemblage on mercury bioaccumulation in a piscivorous sport Şsh, Sci. Total Environ., 506–507 (2015) 330–337.
  • H. Yavuz, A. Denizli, H. Güngüneş¸ M. Safarikova, I. Safarik, Biosorption of mercury on magnetically modiŞed yeast cells, Sep. Purif. Technol., 52 (2006) 253–260.
  • F. Veglio’, F. Beolchini, Removal of metals by biosorption: A review, Hydrometallurgy, 44 (1997) 301-316. pollution?, Int. Microbiol., 3 (2000) 17-24.
  • Y. Kaçar, Ç. Arpa¸ S. Tan, A. Denizli, Ö. Genç, M.Y. Arıca, Biosorption of Hg(II) and Cd(II) from aqueous solutions: comparison of biosorptive capacity of alginate and immobilized live and heat inactivated Phanerochaete chrysosporium, Process. Biochem., 37 (2002) 601–610.
  • A. Kapoor, T. Viraraghavan, D.R. Cullimore, Removal of heavy metals using the fungus Aspergillus niger, Bioresource Technol., 70 (1999) 95-104.
  • C.P. Huang, D. Westman, K. Quirk, J.P. Huang, The removal of cadmium(II) from dilute aqueous solution by fungal adsorbent, Water Sci. and Technol., 20 (1988) 369-376.
  • M. Andaç, A. Denizli, Affinity-recognition-based polymeric cryogels for protein depletion studies, RSC Adv., 4 (2014) 31130-31141.
  • F.M. Plieva, I.Y. Galaev, W. Noppe, B. Mattiasson, Cryogel applications in microbiology, Trends in Microbiol., 16 (2008) 543–551.
  • E. Jain, A. Kumar, Disposable polymeric cryogel bioreactor matrix for therapeutic protein production, Nat. Protoc., 8 (2013) 821–835.
  • N. Bereli, Y. Saylan, L. Uzun, R. Say, A. Denizli, L-Histidine imprinted supermacroporous cryogels for protein recognition, Sep. Purif. Technol., 82 (2011) 28–35.
  • V.I. Lozinsky, I.Y. Galaev, F.M. Plieva, I.N. Savina, H. Jungvid, B. Mattiasson, Polymeric cryogels as promising materials of biotechnological interest, Trends in Biotechnol., 21 (2003) 445-451.
  • P. Arvidsson, F.M. Plieva, V.I. Lozinsky, I.Y. Galaev, B. Mattiasson, Direct chromatographic capture of enzyme from crude homogenate using immobilized metal affinity chromatography on a continuous supermacroporous adsorbent, J. Chromatogr. A, 986 (2003) 275–290.
  • L. Uzun, C. Armutcu, Ö. Biçen, A. Ersöz, R. Say, A. Denizli, Simultaneous depletion of immunoglobulin G and albumin from human plasma using novel monolithic cryogel columns, Colloids Surf. B, 112 (2013) 1–8.
  • M. Iqbal, R.G.J. Edyvean, Biosorption of lead, copper and zinc ions on loofa sponge immobilized biomass of Phanerochaete chrysosporium, Miner. Eng., 17 (2004) 217–223.
  • S. Al-Asheh, Z. Duvnjak, Adsorption of Copper and Chromium by Aspergillus carbonarius, Biotechnol. Prog., 11 (1995) 638–642.
  • J.M. Tobin, C. White, G.M. Gadd, Metal accumulation by fungi: application in environmental biotechnology, J. Ind. Microbiol., 13 (1994) 126–130.
  • M.Z. Hu, J.M. Norman, B.D. Faison, M.E. Reeves, Biosorption of uranium by pseudomonas aeruginosa strain CSU: Characterization and comparison studies, Biotechnol. Bioeng., 51 (1996) 237–247.
  • P.R. Puranik, K.M. Paknikar, Biosorption of lead, cadmium, and zinc by citrobacter strain MCM B-181: Characterization studies, Biotechnol. Prog., 15 (1999) 228–237.
  • E. Pehlivan, B.H. Yanık, G. Ahmetli, M. Pehlivan, Equilibrium isotherm studies for the uptake of cadmium and lead ions onto sugar beet pulp, Bioresource Technol., 99 (2008) 3520–3527.
  • M. Šafaríková, L. Ptáková, I. Kibriková, I. Šafarík, Biosorption of water-soluble dyes on magnetically modified Saccharomyces cerevisiae subsp. uvarum cells, Chemosphere, 59 (2005) 831–835.
  • M.Y. Arıca, Ç. Arpa, B. Kaya, S. Bektaş, A. Denizli, Ö. Genç, Comparative biosorption of mercuric ions from aquatic systems by immobilized live and heat- inactivated Trametes versicolor and Pleurotus sajur- caju, Bioresource Technol., 89 (2003) 145–154.
  • S. Büyüktiryaki, R. Say, A. Ersöz, E. Birlik, A. Denizli, Selective preconcentration of thorium in the presence of UO22+, Ce3+ and La3+ using Th(IV)-imprinted polymer, Talanta, 67 (2005) 640–645.
  • M. Karataş, S. Akgöl, H. Yavuz, R. Say, A. Denizli, Immunoglobulin G depletion from human serum with metal-chelated beads under magnetic field, Int. J. Biol. Macromol., 40 (2007) 254–260.
  • J. Wu, H.Q. Yu, Biosorption of 2,4-dichlorophenol from aqueous solutions by immobilized Phanerochaete chrysosporium biomass in a fixed-bed column, Chem. Eng. J., 138 (2008) 128–135.
  • J. Cruz-Olivares, C. Pérez-Alonso, C. Barrera-Díaz, F. Ureña-Nuñez, M.C. Chaparro-Mercado, B. Bilyeu, Modeling of lead (II) biosorption by residue of allspice in a fixed-bed column, Chem. Eng. J., 228 (2013) 21–27.
  • İ. Koç, G. Baydemir, E. Bayram, H. Yavuz, A. Denizli, Selective removal of 17β-estradiol with molecularly imprinted particle-embedded cryogel systems, J. Hazard. Mater. 192 (2011) 1819–1826.
  • F.M. Plieva, M. Karlsson, M.R. Aguilar, D. Gomez, S. Mikhalovsky, I.Y. Galaev, Pore structure in supermacroporous polyacrylamide based cryogels, Soft Matter, 1 (2005) 303-309.
  • D. Bulgariu, L. Bulgariu, Equilibrium and kinetics studies of heavy metal ions biosorption on green algae waste biomass, Bioresource Technol., 103 (2012) 489–493.
  • Y.A. Yahaya, M.M. Don, Pycnoporus sanguineus as Potential Biosorbent for Heavy Metal Removal from Aqueous Solution: A Review, J. Phys. Sci., 25 (2014) 1–32.
  • M. Fomina, G.M. Gadd, Biosorption: current perspectives on concept, definition and application, Bioresource Technol., 160 (2014) 3–14.
There are 32 citations in total.

Details

Primary Language English
Journal Section Research Article
Authors

Kemal Çetin This is me

Deniz Türkmen This is me

Tahira Qureshi This is me

Necdet Sağlam This is me

Adil Denizli This is me

Publication Date March 1, 2016
Published in Issue Year 2016 Volume: 44 Issue: 1

Cite

APA Çetin, K., Türkmen, D., Qureshi, T., Sağlam, N., et al. (2016). Phanerochaete Chrysosporium Loaded Cryogel Column for Biosorption of Mercury II Ions from Aqueous Solutions ​. Hacettepe Journal of Biology and Chemistry, 44(1), 77-86.
AMA Çetin K, Türkmen D, Qureshi T, Sağlam N, Denizli A. Phanerochaete Chrysosporium Loaded Cryogel Column for Biosorption of Mercury II Ions from Aqueous Solutions ​. HJBC. March 2016;44(1):77-86.
Chicago Çetin, Kemal, Deniz Türkmen, Tahira Qureshi, Necdet Sağlam, and Adil Denizli. “Phanerochaete Chrysosporium Loaded Cryogel Column for Biosorption of Mercury II Ions from Aqueous Solutions ​”. Hacettepe Journal of Biology and Chemistry 44, no. 1 (March 2016): 77-86.
EndNote Çetin K, Türkmen D, Qureshi T, Sağlam N, Denizli A (March 1, 2016) Phanerochaete Chrysosporium Loaded Cryogel Column for Biosorption of Mercury II Ions from Aqueous Solutions ​. Hacettepe Journal of Biology and Chemistry 44 1 77–86.
IEEE K. Çetin, D. Türkmen, T. Qureshi, N. Sağlam, and A. Denizli, “Phanerochaete Chrysosporium Loaded Cryogel Column for Biosorption of Mercury II Ions from Aqueous Solutions ​”, HJBC, vol. 44, no. 1, pp. 77–86, 2016.
ISNAD Çetin, Kemal et al. “Phanerochaete Chrysosporium Loaded Cryogel Column for Biosorption of Mercury II Ions from Aqueous Solutions ​”. Hacettepe Journal of Biology and Chemistry 44/1 (March 2016), 77-86.
JAMA Çetin K, Türkmen D, Qureshi T, Sağlam N, Denizli A. Phanerochaete Chrysosporium Loaded Cryogel Column for Biosorption of Mercury II Ions from Aqueous Solutions ​. HJBC. 2016;44:77–86.
MLA Çetin, Kemal et al. “Phanerochaete Chrysosporium Loaded Cryogel Column for Biosorption of Mercury II Ions from Aqueous Solutions ​”. Hacettepe Journal of Biology and Chemistry, vol. 44, no. 1, 2016, pp. 77-86.
Vancouver Çetin K, Türkmen D, Qureshi T, Sağlam N, Denizli A. Phanerochaete Chrysosporium Loaded Cryogel Column for Biosorption of Mercury II Ions from Aqueous Solutions ​. HJBC. 2016;44(1):77-86.

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