|Table of Contents|

[1] Meng Junli, Wu Min, Ding Wen, Li Ying, et al. Metal cation crosslinking of TiO2-alginate hybrid gels [J]. Journal of Southeast University (English Edition), 2014, 30 (4): 526-530. [doi:10.3969/j.issn.1003-7985.2014.04.021]
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Metal cation crosslinking of TiO2-alginate hybrid gels()
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Journal of Southeast University (English Edition)[ISSN:1003-7985/CN:32-1325/N]

Volumn:
30
Issue:
2014 4
Page:
526-530
Research Field:
Biological Science and Medical Engineering
Publishing date:
2014-12-31

Info

Title:
Metal cation crosslinking of TiO2-alginate hybrid gels
Author(s):
Meng Junli Wu Min Ding Wen Li Ying Zhang Jin Ni Henmei
School of Chemistry and Chemical Engineering, Southeast University, Nanjing 211189, China
Keywords:
cationic crosslinker diffusion hybrid gel ionotropic gelation Michaelis-Menten constant titanium dioxide modified alginate
PACS:
Q814.2
DOI:
10.3969/j.issn.1003-7985.2014.04.021
Abstract:
In order to improve the substrate diffusion properties and stability of an immobilized enzyme, alginate microgels modified with TiO2 nanoparticles were employed as the enzyme immobilizing support. Ionotropic gelation was applied for the preparation of hybrid gels, while Ca2+, Ce3+, Ni2+, Cu2+ and Fe3+ were employed as the crosslinkers. Papain was selected as the model enzyme. UV-Vis spectroscopy was employed to investigate the activity of papain to evaluate kinetics and stability. Analysis results show that the highest affinity, the lowest Michaelis-Menten constant(Km=11.0 mg/mL)and the highest stability are obtained when using Cu2+ as the crosslinker. The effect of the mass ratio of TiO2 to papain on the stability and leakage of papain is also investigated, and the results show that 10∶1(TiO2∶papain)is optimal because the proper use of TiO2 can reduce enzyme leakage and ensure enzyme stability. Preparing Cu/alginate/TiO2 hybrid gels via ionotropic gelation can provide a satisfactory diffusion capability and enzyme stability.

References:

[1] Tao C N, Li G, Wang Y, et al. Enzymatic reporting of peste des petits ruminants virus genes ligating two specific probes on nanoparticles [J]. Biotechnology Letters, 2013, 35(4):613-618.
[2] Li Y H, Liang H, Sun L W, et al. Nanoparticle-tethered NAD with in situ cofactor regeneration [J]. Biotechnology Letters, 2013, 35(6):915-919.
[3] Wu M, He Q, Shao Q F, et al. Preparation and characterization of monodispersed microfloccules of TiO2 nanoparticles with immobilized multienzymes [J]. ACS Applied Materials & Interfaces, 2011, 3(9):3300-3307.
[4] Xu Z, Liu X W, Ma Y S, et al. Interaction of nano-TiO2 with lysozyme: insights into the enzyme toxicity of nanosized particles [J]. Environmental Science and Pollution Research, 2010, 17(3):798-806.
[5] Nayak A K, Das B, Maji R. Calcium alginate/gum Arabic beads containing glibenclamide: development and in vitro characterization [J]. International Journal of Biological Macromolecules, 2012, 51(5):1070-1078.
[6] Maritz J, Krieg H M, Yeates C A, et al. Calcium alginate entrapment of the yeast Rhodosporidium toruloides for the kinetic resolution of 1, 2-epoxyoctane [J]. Biotechnology Letters, 2003, 25(20):1775-1781.
[7] Kierstan M, Bucke C. The immobilization of microbial cells, subcellular organelles, and enzymes in calcium alginate gels [J]. Biotechnology and Bioengineering, 1977, 19(3):387-397.
[8] Ghanem A, Ghaly A. Immobilization of glucose oxidase in chitosan gel beads [J]. Journal of Applied Polymer Science, 2004, 91(2):861-866.
[9] He Z Y, Christopher B W, Zhou Y T, et al. Papain adsorption on chitosan-coated nylon-based immobilized metal ion(Cu2+, Ni2+, Zn2+, Co2+)affinity membranes [J]. Separation Science and Technology, 2010, 45(4):525-534.
[10] Xue Y, Wu C Y, Branford-White C J, et al. Chemical modification of stem bromelain with anhydride groups to enhance its stability and catalytic activity [J]. Journal of Molecular Catalysis B: Enzymatic, 2010, 63(3/4):188-193.
[11] Thu B, Bruheim P, Espevik T, et al. Alginate polycation microcapsules: I. interaction between alginate and polycation [J]. Biomoterials, 1996, 17(10):1031-1040.
[12] Phetsom J, Khammuang S, Suwannawong P, et al. Copper-alginate encapsulation of crude laccase from Lentinus polychrous Lev. and their effectiveness in synthetic dyes decolorizations [J]. Journal of Biological Sciences, 2009, 9(6):573-583.
[13] Kuo C H, Liu Y C, Chang C M J, et al. Optimum conditions for lipase immobilization on chitosan-coated Fe3O4 nanoparticles [J]. Carbohydrate Polymers, 2012, 87(4):2538-2545.
[14] Zheng D, Wang N, Wang X, et al. Effects of the interaction of TiO2 nanoparticles with bisphenol A on their physicochemical properties and in vitro toxicity [J]. Journal of Hazardous Materials, 2012, 199-200:426-432.

Memo

Memo:
Biographies: Meng Junli(1986—), female, graduate; Wu Min(corresponding author), female, doctor, professor, seuwumin@seu.edu.cn.
Foundation items: The National Natural Science Foundation of China(No.21005016), the Foundation of Educational Commission of Jiangsu Province(No.JHB2011-2).
Citation: Meng Junli, Wu Min, Ding Wen, et al. Metal cation crosslinking of TiO2-alginate hybrid gels[J].Journal of Southeast University(English Edition), 2014, 30(4):526-530.[doi:10.3969/j.issn.1003-7985.2014.04.021]
Last Update: 2014-12-20