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Synthesis, Characterization and Chromatographic Applications of Antimicrobial Cryogels

Year 2017, Volume: 45 Issue: 2 , 187 - 195 , 01.06.2017
https://izlik.org/JA82FM97AX

Abstract

Antibacterial materials, in the last years, have become an important center of attention against diseases be- cause of pathogenic bacteria. Within the scope of this study, antimicrobial poly 2-hydroxyethyl methacrylate- glycidyl methacrylate , poly HEMA-GMA , cryogels were synthesized and Ag I ions were immobilized to the structure through the amino acid L-Arginine. For characterization of the structure; swelling test, Fourier transform infrared FT-IR spectroscopy, scanning electron microscopy SEM , surface area BET , elemental analysis and ICP-OES methods were performed. The L-Arginine amino acid was used as an Ag I chelating ligand and the melittin protein adsorption capacity of cryogels was determined as 173.9 mg/g cryogel.

References

  • J. Alexander. History of the medical use of silver. Surg, Infect. (Larchmt), 10 (2009) 289–292.
  • S. Kittler, C. Greulich, J. Diendorf, M. Koller, M. Epple. Toxicity of Silver Nanoparticles Increases during Storage Because of Slow Dissolution under Release of Silver Ions Chem. Mater., 22 (2010) 4548–4554.
  • C. Greulich, D. Braun, A. Peetsch, J. Diendorf, B. Siebers, M. Epple, M. Koller. The toxic effect of silver ions and silver nanoparticles towards bacteria and human cells occurs in the same concentration range. RSC Advances, 2 (2012) 6981–6987.
  • S. Eckhardt, P.S. Brunetto, J. Gagnon, M. Priebe, B. Giese, K.M. Fromm. Nanobio silver: its interactions with peptides and bacteria, and its uses in medicine. Chem. Rev., 113 (2013) 4708–4754.
  • M. Rai, A. Yadav, A. Gade. Silver nanoparticles as a new generation of antimicrobials. Biotechnol. Adv., 27 (2009) 76–83.
  • L. Rizzello, P. Pompa. Nanosilver-based antibacterial drugs and devices: Mechanisms, methodological drawbacks, and guidelines. Chem. Soc. Rev., 43 (2014) 1501–1518.
  • S. Chernousova, M. Epple. Silver as antibacterial agent: ion, nanoparticle, and metal. Chem. Int. Ed., 52 (2013) 1636–1653.
  • Z.J. Lin, J. Lu, M. Hong, R. Cao. Metal-organic frameworks based on flexible ligands (FL-MOFs): structures and applications. Chem. Soc. Rev., 43 (2014) 5867-5895.
  • T.R. Cook, Y.R. Zheng, P.J. Stang. Metal-organic frameworks and self-assembled supramolecular coordination complexes: comparing and contrasting the design, synthesis, and functionality of metal- organic materials. Chem. Rev., 113 (2013) 734-777.
  • J.R. Li, Q. Yu, E.C. Sanudo, Y. Tao, X.H. Bu. An azido- Cu(II)-triazolate complex with utp-type topological network, showing spin-canted antiferromagnetism. Chem. Commun., 25 (2007) 2602-2604.
  • J. Jiang, O.M. Yaghi. Brİnsted acidity in metal-organic frameworks. Chem. Rev., 115 (2015) 6966-6997.
  • L.B. Sun, X.Q. Liu, H.C. Zhou. Design and fabrication of mesoporous heterogeneous basic catalysts. Chem. Soc. Rev., 44 (2015) 5092-5147.
  • M.Y. Masoomi, A. Morsali. Applications of metal– organic coordination polymers as precursors for preparation of nano-materials. Coord. Chem. Rev., 256 (2012) 2921-2943.
  • F.M. Plieva, I.Y. Galaev, B. Mattiasson, Macroporous gels prepared at subzero temperatures as novel materials for chromatography of particulate-containing fluids and cell culture applications, J. Sep. Sci., 30 (2007) 1657–1671.
  • M.U. Kahveci, Z. Beyazkilic¸ , Y. Yagci, Polyacrylamide cryogels by photoinitiated free radical polymerization, J. Polym. Sci: Part A: Polym. Chem., 48 (2010) 4989– 4994.
  • S. Reichelt, C. Abe, S. Hainich, W. Knolle, U. Decker, A. Prager, R. Konieczny, Electron-beam derived polymeric cryogels, Soft Matter, 9 (2013) 2484–2492.
  • S. Hajizadeh, H. Kirsebom, A. Leistner, B. Mattiasson, Composite cryogel with immobilized concanavalin A for affinity chromatography of glycoproteins, J. Sep. Sci., 35 (2012) 2978–2985.
  • F.X. Gao, X.L. Zhao, X.W. He, W.Y. Li, Y.K. Zhang, A pH and temperature dual-responsive macroporous molecularly imprinted cryogel for enhanced recognition capability towards ovalbumin, Anal. Methods, 5 (2013) 6700–6708.
  • B. Mattiasson, A. Kumar, Yu Galaev, Macroporous Polymers: Production Properties and Biotechnological/ Biomedical Applications, CRC Press, 2009.
  • K.J. Yao, J.X. Yun, S.C. Shen, F. Chen, In-situ graft- polymerization preparation of cation-exchange supermacroporous cryogel with sulfo groups in glass columns, J. Chromatogr. A, 1157 (2007) 246–251.
  • M. Andaç, F.M. Plieva, A. Denizli, I.Y. Galaev, B. 33. G.R. Jespersen, A.L. Nielsen, F. Matthiesen, H.S. Mattiasson, Poly(hydroxyethyl methacrylate)-based macroporous hydrogels with disulfide cross-linker, Macromol. Chem. Phys., 209 (2008) 577–584.
  • T. Dispinar, W.V. Camp, L.J. De Cock, B.G. De Geest, F.E. Du Prez, Redox-responsive degradable PEG cryogels as potential cell scaffolds in tissue engineering, Macromol. Biosci., 12 (2012) 383–394.
  • Y. Hwang, C. Zhang, S. Varghese, Poly(ethylene glycol) cryogels as potential cell scaffolds: effect of polymerization conditions on cryogel microstructure and properties, J. Mater. Chem., 20 (2010) 345–351.
  • S. Reichelt, J. Becher, J. Weisser, A. Prager, U. Decker, S. Möller, A. Berg, M. Schnabelrauch, Biocompatible polysaccharide-based cryogels, Mater. Sci. Eng. C, 35 (2014) 164–170.
  • P. Arvidsson, F.M. Plieva, I.N. Savina, V.I. Lozinsky, S. Fexby, L. Bülow, I.Yu. Galaev, B. Mattiasson, Chromatography of microbial cells using continuous supermacroporous affinity and ion-exchange columns, J. Chromatogr. A, 977 (2002) 27–38.
  • C. Aydogan, M. Andac¸ , E. Bayram, R. Say, A. Denizli, Molecularly imprinted cryogel for l-glutamic acid separation, Biotechnol. Prog., 28 (2012) 459–466.
  • M.B. Dainiak, I.Yu. Galaev, A. Kumar, F.M. Plieva, B. Mattiasson, Chromatography of living cells using supermacroporous hydrogels, cryogels, Adv. Biochem. Eng. Biotechnol., 106 (2007) 101–127.
  • G. Ertürk, B. Mattiasson, Cryogels-versatile tools in bioseparation, J. Chromatogr., A 1357 (2014) 24–35.
  • A. Hanora, I.N. Savina, F.M. Plieva, V.A. Izumrudov, B. Mattiasson, I.Y. Galaev, Direct capture of plasmid DNA from non-clarified bacterial lysate using polycation- grafted monoliths, J. Biotechnol., 123 (2006) 343–355.
  • A. Kumar, F.M. Plieva, I.Yu. Galaev, B.M. Mattiasson, Affinity fractionation of lymphocytes using a monolithic cryogel, J. Immunol. Methods, 283 (2003) 185–194.
  • L. Wang, S.C. Shen, X.J. He, J.X. Yun, K. Yao, S.J. Yao, Adsorption and elution behaviors of bovine serum albumin in metal-chelated affinity cryogel beds, Biochem. Eng. J., 42 (2008) 237–242.
  • K.J. Yao, J.X. Yun, S.C. Shen, L.H. Wang, F. Chen, X.M. Yu, Protein adsorption in supermacroporous cryogels with embedded nanoparticles, Biochem. Eng. J., 36 (2007) 139–146. Andersen, H. Kirsebom, Dual application of cryogel as solid support in peptide synthesis and subsequent protein-capture, J. Appl. Polym. Sci., 130 (2013) 4383– 4391.
  • A. Kumar, V. Bansal, J. Andersson, P.K. Roychoudhury, B. Mattiasson, Supermacroporous cryogel matrix for integrated protein isolation immobilized metal affinity chromatographic purification of urokinase from cell culture broth of a human kidney cell line, J. Chromatogr. A, 1103 (2006) 35–42.
  • V.W.M. Lee, H. Li, T.C. Lau, R. Guevremont, K.W.M. Siu. Relative silver(I) ion binding energies of α-amino acids: a determination by means of the kinetic method. Journal of the American Society for Mass Spectrometry, 9 (1998) 760–766.
  • R. Schwalbe, L.S. Moore, A.C. Goodwin, Antimicrobial Susceptibility Testing Protocols. CRC Press, pp. 75-79.
  • X. Wu, A.K. Singh, X. Wu, Y. Lyu, A.K. Bhunia, G. Narsimhan, Characterization of antimicrobial activity against Listeria and cytotoxicity of native melittin and its mutant variants, Colloids and Surfaces B: Biointerfaces, 143 (2016) 194–205.
  • B. Morzyk-Ociepa, D. Michalska, Vibrational spectra of 1-methyluracilate complex with silver(I) and theoretical studies of the 1-MeU anion, Spectrochimica Acta Part A, 59 (2003) 1247-1254.

Antimikrobiyal Kriyojellerin Sentezi, Karakterizasyonu ve Kromatografik Uygulamaları

Year 2017, Volume: 45 Issue: 2 , 187 - 195 , 01.06.2017
https://izlik.org/JA82FM97AX

Abstract

P atojenik bakterilerin sebebiyet verdiği hastalıklara karşı antibakteriyel malzemeler son yılllarda olduça önemli bir ilgi merkezi haline gelmiştir. Bu çalışma kapsamında antimikrobiyal poli 2-hidroksietil metakrilat-glisidil metakrilat , pol HEMA-GMA , kriyojeller sentezlenmiş ve yapıya L-Arjinin aminoasidi üzerinden Ag I iyonları immobilize edilmiştir. Yapının karakterizasyonu için; şişme testi, Frouer dönüşümlü infrared FT-IR spektroskopisi, taramalı elektron mikroskobu SEM , yüzey alanı BET , elementel ve ICP-OES analizleri yapılmıştır. L-Arjinin amino asidinden Ag I şelatlayıcı ligand olarak yararlanılmış ve kriyojellerin melittin proteini için adsorpsiyon kapasitesi 173.9 mg protein/g kriyojel olarak tespit edilmiştir

References

  • J. Alexander. History of the medical use of silver. Surg, Infect. (Larchmt), 10 (2009) 289–292.
  • S. Kittler, C. Greulich, J. Diendorf, M. Koller, M. Epple. Toxicity of Silver Nanoparticles Increases during Storage Because of Slow Dissolution under Release of Silver Ions Chem. Mater., 22 (2010) 4548–4554.
  • C. Greulich, D. Braun, A. Peetsch, J. Diendorf, B. Siebers, M. Epple, M. Koller. The toxic effect of silver ions and silver nanoparticles towards bacteria and human cells occurs in the same concentration range. RSC Advances, 2 (2012) 6981–6987.
  • S. Eckhardt, P.S. Brunetto, J. Gagnon, M. Priebe, B. Giese, K.M. Fromm. Nanobio silver: its interactions with peptides and bacteria, and its uses in medicine. Chem. Rev., 113 (2013) 4708–4754.
  • M. Rai, A. Yadav, A. Gade. Silver nanoparticles as a new generation of antimicrobials. Biotechnol. Adv., 27 (2009) 76–83.
  • L. Rizzello, P. Pompa. Nanosilver-based antibacterial drugs and devices: Mechanisms, methodological drawbacks, and guidelines. Chem. Soc. Rev., 43 (2014) 1501–1518.
  • S. Chernousova, M. Epple. Silver as antibacterial agent: ion, nanoparticle, and metal. Chem. Int. Ed., 52 (2013) 1636–1653.
  • Z.J. Lin, J. Lu, M. Hong, R. Cao. Metal-organic frameworks based on flexible ligands (FL-MOFs): structures and applications. Chem. Soc. Rev., 43 (2014) 5867-5895.
  • T.R. Cook, Y.R. Zheng, P.J. Stang. Metal-organic frameworks and self-assembled supramolecular coordination complexes: comparing and contrasting the design, synthesis, and functionality of metal- organic materials. Chem. Rev., 113 (2013) 734-777.
  • J.R. Li, Q. Yu, E.C. Sanudo, Y. Tao, X.H. Bu. An azido- Cu(II)-triazolate complex with utp-type topological network, showing spin-canted antiferromagnetism. Chem. Commun., 25 (2007) 2602-2604.
  • J. Jiang, O.M. Yaghi. Brİnsted acidity in metal-organic frameworks. Chem. Rev., 115 (2015) 6966-6997.
  • L.B. Sun, X.Q. Liu, H.C. Zhou. Design and fabrication of mesoporous heterogeneous basic catalysts. Chem. Soc. Rev., 44 (2015) 5092-5147.
  • M.Y. Masoomi, A. Morsali. Applications of metal– organic coordination polymers as precursors for preparation of nano-materials. Coord. Chem. Rev., 256 (2012) 2921-2943.
  • F.M. Plieva, I.Y. Galaev, B. Mattiasson, Macroporous gels prepared at subzero temperatures as novel materials for chromatography of particulate-containing fluids and cell culture applications, J. Sep. Sci., 30 (2007) 1657–1671.
  • M.U. Kahveci, Z. Beyazkilic¸ , Y. Yagci, Polyacrylamide cryogels by photoinitiated free radical polymerization, J. Polym. Sci: Part A: Polym. Chem., 48 (2010) 4989– 4994.
  • S. Reichelt, C. Abe, S. Hainich, W. Knolle, U. Decker, A. Prager, R. Konieczny, Electron-beam derived polymeric cryogels, Soft Matter, 9 (2013) 2484–2492.
  • S. Hajizadeh, H. Kirsebom, A. Leistner, B. Mattiasson, Composite cryogel with immobilized concanavalin A for affinity chromatography of glycoproteins, J. Sep. Sci., 35 (2012) 2978–2985.
  • F.X. Gao, X.L. Zhao, X.W. He, W.Y. Li, Y.K. Zhang, A pH and temperature dual-responsive macroporous molecularly imprinted cryogel for enhanced recognition capability towards ovalbumin, Anal. Methods, 5 (2013) 6700–6708.
  • B. Mattiasson, A. Kumar, Yu Galaev, Macroporous Polymers: Production Properties and Biotechnological/ Biomedical Applications, CRC Press, 2009.
  • K.J. Yao, J.X. Yun, S.C. Shen, F. Chen, In-situ graft- polymerization preparation of cation-exchange supermacroporous cryogel with sulfo groups in glass columns, J. Chromatogr. A, 1157 (2007) 246–251.
  • M. Andaç, F.M. Plieva, A. Denizli, I.Y. Galaev, B. 33. G.R. Jespersen, A.L. Nielsen, F. Matthiesen, H.S. Mattiasson, Poly(hydroxyethyl methacrylate)-based macroporous hydrogels with disulfide cross-linker, Macromol. Chem. Phys., 209 (2008) 577–584.
  • T. Dispinar, W.V. Camp, L.J. De Cock, B.G. De Geest, F.E. Du Prez, Redox-responsive degradable PEG cryogels as potential cell scaffolds in tissue engineering, Macromol. Biosci., 12 (2012) 383–394.
  • Y. Hwang, C. Zhang, S. Varghese, Poly(ethylene glycol) cryogels as potential cell scaffolds: effect of polymerization conditions on cryogel microstructure and properties, J. Mater. Chem., 20 (2010) 345–351.
  • S. Reichelt, J. Becher, J. Weisser, A. Prager, U. Decker, S. Möller, A. Berg, M. Schnabelrauch, Biocompatible polysaccharide-based cryogels, Mater. Sci. Eng. C, 35 (2014) 164–170.
  • P. Arvidsson, F.M. Plieva, I.N. Savina, V.I. Lozinsky, S. Fexby, L. Bülow, I.Yu. Galaev, B. Mattiasson, Chromatography of microbial cells using continuous supermacroporous affinity and ion-exchange columns, J. Chromatogr. A, 977 (2002) 27–38.
  • C. Aydogan, M. Andac¸ , E. Bayram, R. Say, A. Denizli, Molecularly imprinted cryogel for l-glutamic acid separation, Biotechnol. Prog., 28 (2012) 459–466.
  • M.B. Dainiak, I.Yu. Galaev, A. Kumar, F.M. Plieva, B. Mattiasson, Chromatography of living cells using supermacroporous hydrogels, cryogels, Adv. Biochem. Eng. Biotechnol., 106 (2007) 101–127.
  • G. Ertürk, B. Mattiasson, Cryogels-versatile tools in bioseparation, J. Chromatogr., A 1357 (2014) 24–35.
  • A. Hanora, I.N. Savina, F.M. Plieva, V.A. Izumrudov, B. Mattiasson, I.Y. Galaev, Direct capture of plasmid DNA from non-clarified bacterial lysate using polycation- grafted monoliths, J. Biotechnol., 123 (2006) 343–355.
  • A. Kumar, F.M. Plieva, I.Yu. Galaev, B.M. Mattiasson, Affinity fractionation of lymphocytes using a monolithic cryogel, J. Immunol. Methods, 283 (2003) 185–194.
  • L. Wang, S.C. Shen, X.J. He, J.X. Yun, K. Yao, S.J. Yao, Adsorption and elution behaviors of bovine serum albumin in metal-chelated affinity cryogel beds, Biochem. Eng. J., 42 (2008) 237–242.
  • K.J. Yao, J.X. Yun, S.C. Shen, L.H. Wang, F. Chen, X.M. Yu, Protein adsorption in supermacroporous cryogels with embedded nanoparticles, Biochem. Eng. J., 36 (2007) 139–146. Andersen, H. Kirsebom, Dual application of cryogel as solid support in peptide synthesis and subsequent protein-capture, J. Appl. Polym. Sci., 130 (2013) 4383– 4391.
  • A. Kumar, V. Bansal, J. Andersson, P.K. Roychoudhury, B. Mattiasson, Supermacroporous cryogel matrix for integrated protein isolation immobilized metal affinity chromatographic purification of urokinase from cell culture broth of a human kidney cell line, J. Chromatogr. A, 1103 (2006) 35–42.
  • V.W.M. Lee, H. Li, T.C. Lau, R. Guevremont, K.W.M. Siu. Relative silver(I) ion binding energies of α-amino acids: a determination by means of the kinetic method. Journal of the American Society for Mass Spectrometry, 9 (1998) 760–766.
  • R. Schwalbe, L.S. Moore, A.C. Goodwin, Antimicrobial Susceptibility Testing Protocols. CRC Press, pp. 75-79.
  • X. Wu, A.K. Singh, X. Wu, Y. Lyu, A.K. Bhunia, G. Narsimhan, Characterization of antimicrobial activity against Listeria and cytotoxicity of native melittin and its mutant variants, Colloids and Surfaces B: Biointerfaces, 143 (2016) 194–205.
  • B. Morzyk-Ociepa, D. Michalska, Vibrational spectra of 1-methyluracilate complex with silver(I) and theoretical studies of the 1-MeU anion, Spectrochimica Acta Part A, 59 (2003) 1247-1254.
There are 37 citations in total.

Details

Primary Language English
Authors

Kadir Erol This is me

Publication Date June 1, 2017
IZ https://izlik.org/JA82FM97AX
Published in Issue Year 2017 Volume: 45 Issue: 2

Cite

APA Erol, K. (2017). Synthesis, Characterization and Chromatographic Applications of Antimicrobial Cryogels. Hacettepe Journal of Biology and Chemistry, 45(2), 187-195. https://izlik.org/JA82FM97AX
AMA 1.Erol K. Synthesis, Characterization and Chromatographic Applications of Antimicrobial Cryogels. HJBC. 2017;45(2):187-195. https://izlik.org/JA82FM97AX
Chicago Erol, Kadir. 2017. “Synthesis, Characterization and Chromatographic Applications of Antimicrobial Cryogels”. Hacettepe Journal of Biology and Chemistry 45 (2): 187-95. https://izlik.org/JA82FM97AX.
EndNote Erol K (June 1, 2017) Synthesis, Characterization and Chromatographic Applications of Antimicrobial Cryogels. Hacettepe Journal of Biology and Chemistry 45 2 187–195.
IEEE [1]K. Erol, “Synthesis, Characterization and Chromatographic Applications of Antimicrobial Cryogels”, HJBC, vol. 45, no. 2, pp. 187–195, June 2017, [Online]. Available: https://izlik.org/JA82FM97AX
ISNAD Erol, Kadir. “Synthesis, Characterization and Chromatographic Applications of Antimicrobial Cryogels”. Hacettepe Journal of Biology and Chemistry 45/2 (June 1, 2017): 187-195. https://izlik.org/JA82FM97AX.
JAMA 1.Erol K. Synthesis, Characterization and Chromatographic Applications of Antimicrobial Cryogels. HJBC. 2017;45:187–195.
MLA Erol, Kadir. “Synthesis, Characterization and Chromatographic Applications of Antimicrobial Cryogels”. Hacettepe Journal of Biology and Chemistry, vol. 45, no. 2, June 2017, pp. 187-95, https://izlik.org/JA82FM97AX.
Vancouver 1.Kadir Erol. Synthesis, Characterization and Chromatographic Applications of Antimicrobial Cryogels. HJBC [Internet]. 2017 Jun. 1;45(2):187-95. Available from: https://izlik.org/JA82FM97AX

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