Abstract
The complexation process of the transition metal Cu(II) with quercetin was studied. The investigation was conducted spectrophotometrically in ethanol at the maximum absorption wavelength of 458.5 nm. Cu(II)—quercetin complex composition (1: 1) was determined using the Job, Harvey—Manning, and mole ratio methods. Complex stability constant was calculated by the Job and mole ratio methods and the respective logarithm values were 7.53 ± 0.25 and 7.44 ± 0.03. A new method for quantitative determination of the quercetin content in solution was developed in this work. At the optimal conditions quercetin was determined in concentrations ranging from 0.202 to 1.006 µg cm−3 with relative standard error of 2.5 % to 5.5 %. The lower detection limit was 0.067 µg cm−3. The method was found very accurate, reproducible, and sensitive, capable to determine microamounts of quercetin in pharmaceutical preparations.
[1] Manach, C., Texier, O., Morand, C., Crespy, V., Regerat, F., Demigne, C., and Remesy, C., Free Radical Biol. Med. 27, 1259 (1999). http://dx.doi.org/10.1016/S0891-5849(99)00159-810.1016/S0891-5849(99)00159-8Suche in Google Scholar
[2] Vinson, J. A., Dabbagh, Y. A., Serry, M. M., and Jang, J. H., J. Agric. Food Chem. 43, 2800 (1995). http://dx.doi.org/10.1021/jf00059a00510.1021/jf00059a005Suche in Google Scholar
[3] Peterson, J. and Dwyer, J., Nutr. Res. (N.Y.), 18, 1995 (1998). http://dx.doi.org/10.1016/S0271-5317(98)00169-910.1016/S0271-5317(98)00169-9Suche in Google Scholar
[4] Bors, W., Heller, W., Michel, C., and Saran, M., Methods Enzymol. 186, 343 (1990). http://dx.doi.org/10.1016/0076-6879(90)86128-I10.1016/0076-6879(90)86128-ISuche in Google Scholar
[5] Thomson, M., Wiliams, C. R., and Elliot, G. E. P., Anal. Chim. Acta 85, 375 (1976). http://dx.doi.org/10.1016/S0003-2670(01)84703-610.1016/S0003-2670(01)84703-6Suche in Google Scholar
[6] Afanasev, I. B., Dorozhko, A. I., Brodskii, A. V., Kostyuk, V. A., and Potapovitch, A. I., Biochem. Pharmacol. 38, 1763 (1989). http://dx.doi.org/10.1016/0006-2952(89)90410-310.1016/0006-2952(89)90410-3Suche in Google Scholar
[7] De Whalley, C. V., Rankin, S. M., Hoult, J. R. S., Jessup, W., and Leake, D. S., Biochem. Pharmacol. 39, 1743 (1990). http://dx.doi.org/10.1016/0006-2952(90)90120-A10.1016/0006-2952(90)90120-ASuche in Google Scholar
[8] Wang, P. F. and Zheng, R. L., Chem. Phys. Lipids 63, 37 (1992). http://dx.doi.org/10.1016/0009-3084(92)90019-L10.1016/0009-3084(92)90019-LSuche in Google Scholar
[9] Torreggiani, A., Tamba, A., Trinchero, A., and Bonora, S., J. Mol. Struct. 744, 759 (2005). http://dx.doi.org/10.1016/j.molstruc.2004.11.08110.1016/j.molstruc.2004.11.081Suche in Google Scholar
[10] Li, W. and Fitzloff, J. F., J. Chromatogr., B 765, 99 (2001). 10.1016/S0378-4347(01)00404-2Suche in Google Scholar
[11] Stecher, G., Huck, C. W., Popp, M., and Bonn, G. K., Fresenius’ J. Anal. Chem. 371, 73 (2001). http://dx.doi.org/10.1007/s00216010089810.1007/s002160100898Suche in Google Scholar
[12] Tokusoglu, O., Unal, M. K., and Yildirim, Z., Acta Chromatogr. 13, 196 (2003). Suche in Google Scholar
[13] Manach, C., Morand, C., Crespy, V., Demigne, C., Texier, O., Regerat, F., and Remesy, C., FEBS Lett. 426, 331 (1998). http://dx.doi.org/10.1016/S0014-5793(98)00367-610.1016/S0014-5793(98)00367-6Suche in Google Scholar
[14] Sun, L., Meng, L., Chen, J., Hu, R., and Jia, D. Z., Se Pu. 19, 395 (2001). Suche in Google Scholar
[15] Li, X., Zhang, Y. P., and Yuan, Z. B., Chromatographia 55, 243 (2002). http://dx.doi.org/10.1007/BF0249215010.1007/BF02492150Suche in Google Scholar
[16] Yue, M. E., Jiang, T. F., and Shi, Y. P., Talanta 62, 695 (2004). http://dx.doi.org/10.1016/j.talanta.2003.09.02410.1016/j.talanta.2003.09.024Suche in Google Scholar
[17] Job, P., Ann. Chim. (Paris) 9, 113 (1928). 10.3406/bmsap.1928.9218Suche in Google Scholar
[18] Hargis, L. G., Analytical Chemistry: Principles and Techniques, p. 67. Prentice Hall, New Jersey, 1988. Suche in Google Scholar
[19] Perez-Bendito, D. and Silva, S., Kinetic Methods in Analytical Chemistry, p. 256. Ellis Horwood, Chichester, 1988. Suche in Google Scholar
[20] Mottola, H. A., Kinetic Aspects of Analytical Chemistry. Wiley, New York, 1988. 10.1016/S0003-2670(00)80370-0Suche in Google Scholar
[21] Batuner, M. L. and Pozin, E. M., Mathematical Methods in Chemical Engineering (in Russian), p. 609. Khimiya, Leningrad, 1976. Suche in Google Scholar
© 2007 Institute of Chemistry, Slovak Academy of Sciences
Artikel in diesem Heft
- Spectrophotometric determination of microamounts of quercetin based on its complexation with copper(II)
- Oxygen evolution on Ti/Co3O4-coated electrodes in alkaline solution
- The zeta potential of kaolin suspensions measured by electrophoresis and electroacoustics
- Fluidization behavior of oil-contaminated sand
- Software sensors for monitoring of a solid waste composting process
- Calcined Ni—Al layered double hydroxide as a catalyst for total oxidation of volatile organic compounds: Effect of precursor crystallinity
- Thermodynamic possibilities and constraints of pure hydrogen production by a chromium, nickel, and manganese-based chemical looping process at lower temperatures
- Death kinetics of Escherichia coli in goat milk and Bacillus licheniformis in cloudberry jam treated by ohmic heating
- Topochemical models for anti-HIV activity of 1-alkoxy-5-alkyl-6-(arylthio)uracils
- Acidity, lipophilicity, solubility, absorption, and polar surface area of some ACE inhibitors
- Silver as anode in cryolite—alumina-based melts
- Multicomponent facile synthesis of novel dihydroazolopyrimidinyl carbamides
- Z. Platková, M. Polakovič, V. Štefuca, M. Vandáková, and M. Antošová: Selection of Carrier for Immobilization of Fructosyltransferase from Aureobasidium pullulans
Artikel in diesem Heft
- Spectrophotometric determination of microamounts of quercetin based on its complexation with copper(II)
- Oxygen evolution on Ti/Co3O4-coated electrodes in alkaline solution
- The zeta potential of kaolin suspensions measured by electrophoresis and electroacoustics
- Fluidization behavior of oil-contaminated sand
- Software sensors for monitoring of a solid waste composting process
- Calcined Ni—Al layered double hydroxide as a catalyst for total oxidation of volatile organic compounds: Effect of precursor crystallinity
- Thermodynamic possibilities and constraints of pure hydrogen production by a chromium, nickel, and manganese-based chemical looping process at lower temperatures
- Death kinetics of Escherichia coli in goat milk and Bacillus licheniformis in cloudberry jam treated by ohmic heating
- Topochemical models for anti-HIV activity of 1-alkoxy-5-alkyl-6-(arylthio)uracils
- Acidity, lipophilicity, solubility, absorption, and polar surface area of some ACE inhibitors
- Silver as anode in cryolite—alumina-based melts
- Multicomponent facile synthesis of novel dihydroazolopyrimidinyl carbamides
- Z. Platková, M. Polakovič, V. Štefuca, M. Vandáková, and M. Antošová: Selection of Carrier for Immobilization of Fructosyltransferase from Aureobasidium pullulans