Electrochemical Properties of HRP Immobilized Biosensor bound with EPDM

EPDM으로 결합된 HRP 고정 바이오센서의 전기화학적 특성

  • 윤길중 (청주대학교 이공대학 응용과학부)
  • Published : 2007.06.30

Abstract

An HRP immobilized carbon paste electrode, which was bound by EPDM, was newly fabricated and its electrochemical properties were investigated for the purpose of validating the new possibility for the practical use of biosensor. In the experimental range of substrate concentration, Lineweaver-Burk plot of the signal showed a good linearity. This means that HRP was embedded effectively to preserve its identity in the bulk of composite electrode materials and EPDM is a recommendatory binder. When the electrode was run at low operating potential($0.0\sim-1.0$ V vs. Ag/AgCl), it showed a high sensitivity and a good reproducibility. Especially the mechanical stability of the dried rubber was a remarkable breakthrough to get over a difficulty in putting the carbon-paste electrode bound with silicon oil to real use.

EPDM을 결합재로 사용하고, HRP를 고정시켜 과산화수소 정량을 위한 탄소반죽전극을 제작하고, 바이오센서로서 실용화 가능성을 살펴보기 위하여 전기화학적 특성을 고찰하였다. 실험 농도 영역에서 신호의 Lineweaver-Burk 도시가 보여준 좋은 직선성은 촉매력이 효과적으로 발휘될 수 있도록 EPDM이 전극 물질 속에서 HRP를 잘 고정하고 있음을 보여 주었으며, 이는 EPDM이 전극물질 결합재로 활용될 수 있음을 말하는 것이다. 전극은 낮은 전극전위($0.0\sim-1.0$ V vs. Ag/AgCl)에서 작동하였으며, 이 때 얻어진 신호는 높은 감도와 재현성을 보여 주었다. 특히 건조된 고무의 기계적 안정성은 탄소반죽 전극 실용화의 난제였던 실리콘 오일 결합재의 대체가능성을 열어주었다.

Keywords

References

  1. R. D. Schmid and F. Scheller, 'Biosensors Applications in Medicine, Environmental Protection and Process Control', Vol. 13, p. 4. Weinheim Germany, 1989
  2. R. P. Buck, W. E. Hatfield, M. Umana, and E. F. Bowden, 'Biosensor Technology', p. 3, Marcel Dekker, Inc. U.S.A. 1990
  3. A. N. Reshetilov, M. V. Donova, D. V. Dovbnya and A. M. Boronin, 'FET-microbial Sensor for Xylose detection based on Gluconobacter oxydans Cells', Biosensors & Bioelectronics, 11, 401 (1996) https://doi.org/10.1016/0956-5663(96)82735-7
  4. V. C. Sanz, M. L. Mena, A. G. Cortes, P. Yanez-Sedeno and J. M. Pingarron, 'Development of a Tyrosinase biosensor based on Gold nanoparticlesmodified Glassy carbon electrodes Application to the Measurement of a Bioelectrochemical polyphenols Index in Wines', Anal. Chim. Acta, 528, 1 (2005) https://doi.org/10.1016/j.aca.2004.10.007
  5. P. Mailley, E. A. Cummings, S. Mailley, S. Cosnier, B. R. Eggins and E. McAdams, 'Amperometric detection of Phenolic compounds by Polypyrrole-based composite Carbon paste Electrodes', Biochemistry, 63, 291 (2004)
  6. I. Vostiar, J. Tkac, E. Sturdik and P. Gemeiner, 'Amperometric urea biosensor based on Urea and Electropolimerized Toludine blue dye as a pH-sensitive Redox probe', Biochemistry, 56, 113 (2002)
  7. E. Crouch, D. C. Cowell, S. Hoskins, R. W. Pittson and J. P. Hart, 'Amperometric, Screen-printed, Glucose biosensor for Analysis of human plasma samples using a Biocomposite water-based Carbon ink incorporating Glucose oxidase', Anal. Biochem. 347, 17 (2005) https://doi.org/10.1016/j.ab.2005.08.011
  8. K. J. Yoon, K. J. Kim, and H. S. Kwon, 'Electrochemical Properties of the Chicken Small Intestinal Tissue based Enzyme Electrode for the Determination of Hydrogen Peroxide', J. Kor. Chem. Soc. 43(3), 271 (1999)
  9. K. J. Yoon, H. S. Kwon, and B. G. Lee, 'Electrochemical Determination of pH-Stability Curve of Enzyme', J. Kor. Chem. Soc. 49(3), 325 (2005) https://doi.org/10.5012/jkcs.2005.49.3.325
  10. H. S. Kwon, E. H. Jin, K. J. Yoon and Y. N. Pak, 'Mushroom-juice based Gold Electrode for the Determination of Phenols', J. Kor. Chem. Soc. 49(2), 224 (2005) https://doi.org/10.5012/jkcs.2005.49.2.224
  11. K. J. Yoon, 'Optimum pH of the Reduction of Hydrogen peroxide at a Tobacco plant Tissue based Amperometric Biosensor', J. Kor. Chem. Soc. 48(6), 654 (2004) https://doi.org/10.5012/jkcs.2004.48.6.654
  12. K. J. Yoon, 'A New Strategy for Determining Optimum pH of Isozymes', Bull. Kor. Chem. Soc. 25(7), 997 (2004) https://doi.org/10.5012/bkcs.2004.25.7.997
  13. K. J. Yoon, 'Electrochemical Determination of the Optimum pH of HRP', Anal. Sci. Tech. 16(6), 504 (2003)
  14. J. A. Brydson, 'Rubbery Materials and Their Compounds', p. 147, Elsevier Applied Science, London and New York, 1988
  15. J. Wang, N. Naser, H. S. Kwon, and M. Y. Cho, 'Tissue bioelectrode for Organic-phase Enzymatic Assays', Anal. Chim. Acta, 264, 7 (1992) https://doi.org/10.1016/0003-2670(92)85290-M
  16. B. Wang and S. Dong, 'Sol-gel-derived Amperometric Biosensor for Hydrogen peroxide based on Methylene green Incorporated in Nafion film', J. Electroanal. Chem. 487, 45 (2000) https://doi.org/10.1016/S0022-0728(00)00152-2
  17. A. N. Diaz, M. C. R. Peinado and M. C. T. Minguez, 'Sol-gel Horseradish Peroxidase Biosensor for Hydrogen peroxide Detection by Chemiluminescence', Anal. Chim. Acta, 363, 221 (1998) https://doi.org/10.1016/S0003-2670(98)00080-4
  18. Y. Miao and S. N. Tan, 'Amperometric Hydrogen peroxide Biosensor with Silica sol-gel/chitosan Film as Immobilization Matrix', Anal. Chim. Acta, 437, 87 (2001) https://doi.org/10.1016/S0003-2670(01)00986-2