Imprinted polymer-based enantioselective acoustic sensor using a quartz crystal microbalance

(Note: The full text of this document is currently only available in the PDF Version )

Karsten Haupt, Krzysztof Noworyta and Wlodzimierz Kutner


Abstract

An enantioselective chemical sensor has been designed and fabricated. The sensor is based on a molecularly imprinted polymer, serving as the recognition element, and a quartz crystal microbalance (QCM), used as the transducer. The polymer, imprinted with the chiral β-blocking drug S-propranolol, was cast as a thin permeable film onto a gold electrode deposited on the quartz crystal vibrator. The mass increase of the polymer due to analyte binding was quantified by piezoelectric microgravimetry with the QCM. The sensor was able to discriminate between the R- and S-propranolol enantiomers in acidified acetonitrile solutions owing to the enantioselectivity of the imprinted sites. Detectability of S-propranolol was 50 µmol dm–3. The general procedure developed here for preparation of the sensor can be adapted for fabrication of a range of different stable analytical sensing devices for numerous analytes by using conventional molecular imprinting protocols.


References

  1. T. Takeuchi and J. Haginaka, J. Chromatogr. B, 1999, 728, 1 CrossRef CAS.
  2. B. Sellergren, Trends Anal. Chem., 1997, 16, 310 CrossRef CAS.
  3. K. Haupt and K. Mosbach, Biochem. Soc. Trans., 1999, 27, 344 CAS.
  4. G. Vlatakis, L. I. Andersson, R. Müller and K. Mosbach, Nature (London), 1993, 361, 645 CrossRef CAS.
  5. S. Kröger, A. P. F. Turner, K. Mosbach and K. Haupt, Anal. Chem., 1999, 71, 3698 CrossRef CAS.
  6. T. A. Sergeyeva, S. A. Piletsky, A. A. Brovko, E. A. Slinchenko, L. M. Sergeeva, T. L. Panasyuk and A. V. Elskaya, Analyst, 1999, 124, 331 RSC.
  7. D. Kriz, O. Ramström, A. Svensson and K. Mosbach, Anal. Chem., 1995, 67, 2142 CrossRef CAS.
  8. R. Levi, S. McNiven, S. A. Piletsky, S. H. Cheong, K. Yano and I. Karube, Anal. Chem., 1997, 69, 2017 CrossRef CAS.
  9. M. Thompson, A. L. Kipling, W. C. Duncan-Hewitt, L. V. Rajkovic and B. A. Cavic-Vlasak, Analyst, 1991, 116, 881 RSC.
  10. M. Thompson and D. C. Stone, Surface-Launched Acoustic Wave Sensors, John Wiley & Sons, New York, 1997 Search PubMed.
  11. F. L. Dickert, P. Forth, P. Lieberzeit and M. Tortschanoff, Fresenius' J. Anal. Chem., 1998, 360, 759 CrossRef CAS.
  12. C. Malitesta, I. Losito and P. G. Zambonin, Anal. Chem., 1999, 71, 1366 CrossRef CAS.
  13. H.-S. Ji, S. McNiven, K. Ikebukuro and I. Karube, Anal. Chim. Acta, 1999, 390, 93 CrossRef CAS.
  14. W. Koh, W. Kutner, M. T. Jones and K. M. Kadish, Electroanalysis, 1993, 5, 209 CAS.
  15. L. Andersson, Anal. Chem., 1996, 68, 111 CrossRef CAS.
  16. E. Yilmaz, K. Mosbach and K. Haupt, Anal. Commun., 1999, 36, 167 RSC.
  17. S. J. Martin, V. E. Granstaff and G. C. Frye, Anal. Chem., 1991, 63, 2272 CrossRef CAS.
  18. K. K. Kanazawa and J. G. Gordon, Anal. Chim. Acta, 1985, 175, 99 CrossRef CAS.
  19. G. L. Hayward and M. Thompson, J. Appl. Phys., 1998, 83, 2194 CrossRef CAS.
  20. W. Kutner, Electrochim. Acta, 1992, 37, 1109 CrossRef CAS.
  21. W. Kutner and K. Doblhofer, J. Electroanal. Chem., 1992, 326, 139 CrossRef CAS.
  22. Application of Piezoelectric Quartz Crystal Microbalances, ed. C. Lu and A. W. Czandera, Elsevier, Amsterdam, 1984 Search PubMed.
Click here to see how this site uses Cookies. View our privacy policy here.