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Optimization of Ultrasonic Extraction of Total Flavonoids from Cinnamonum zeylaniccum

Year 2017, Volume: 4 Issue: 3, Special Issue 1, 108 - 116, 25.11.2017
https://doi.org/10.21448/ijsm.363832

Abstract

Cancer is the most widespread disease in the world currently. The availability of using controlled-drug-releasing capsules for those cancer diseases had become more and more important. The initial operation of the production process of the capsules requires the extraction of the active ingredients from the plant. Phytochemicals exert positive effects on human health and thus they are important compounds found in medicinal plants like Cinnamonum zeylaniccum. Flavonoids are the most effective phytochemicals having more than four thousand different types and they are well known antioxidants especially used in treatments of cancer diseases. In the light of these information, the aim of this study was to optimize the ultrasonic extraction of flavonoids (as a raw-material fort he capsules) from Cinnamonum zeylaniccum with methanol by using Response Surface Methodology. Batch extraction experiments had been carried out with the parameters of solid-to-liquid ratio, extraction temperature and time, by applying ultrasounds on sweep mode. Multi-parameter optimization was carried out with three-parameter, three-level, three-centered Box-Behnken design considering the optimum values obtained in single-parameter optimization. Design-Expert software was used to obtain the function representing the extraction yield surface depending on the selected parameters. As a result of the statistical analysis, the function expressing the effect of the parameters on the resulting amount of quercetin production in industry had been derived as reduced cubic model. Solid-to-liquid ratio was found as the most effective parameter on the extraction yield. At the optimum conditions (30°C, 1/10 g/ml, and 15 minutes), 12.34 mg quercetin equivalent total flavonoids were extracted.

References

  • Yıldırım, M. E., Canbal, M., Ozyuvali, E., & Karataş, Ö. F. (2016). Urological recommedations of Hadji Pasha’s, a Turkish aged doctor in Anatolia. Avicenna journal of phytomedicine, 6(5), 502.
  • Murakami, A., Ashida, H., & Terao, J. (2008). Multitargeted cancer prevention by quercetin. Cancer letters, 269(2), 315-325.
  • Pavun, L., Đurđević, P., Jelikić-Stankov, M., Đikanović, D., Ćirić, A., & Uskoković-Marković, S. (2014). Spectrofluorimetric determination of quercetin in pharmaceutical dosage forms. Macedonian Journal of Chemistry and Chemical Engineering, 33(2), 209-215.
  • Jeong, J. H., An, J. Y., Kwon, Y. T., Rhee, J. G., & Lee, Y. J. (2009). Effects of low dose quercetin: Cancer cell‐specific inhibition of cell cycle progression. Journal of cellular biochemistry, 106(1), 73-82.
  • Canivenc-Lavier, M. C., Vernevaut, M. F., Totis, M., Siess, M. H., Magdalou, J., & Suschetet, M. (1996). Comparative effects of flavonoids and model inducers on drug-metabolizing enzymes in rat liver. Toxicology, 114(1), 19-27.
  • Moon, Y. J., Wang, X., & Morris, M. E. (2006). Dietary flavonoids: effects on xenobiotic and carcinogen metabolism. Toxicology in vitro, 20(2), 187-210.
  • Liu, Y., & Guo, M. (2015). Studies on transition metal-quercetin complexes using electrospray ionization tandem mass spectrometry. Molecules, 20(5), 8583-8594.
  • Cornard, J. P., & Merlin, J. C. (2002). Spectroscopic and structural study of complexes of quercetin with Al (III). Journal of Inorganic Biochemistry, 92(1), 19-27.
  • Tan, Q., Liu, W., Guo, C., & Zhai, G. (2011). Preparation and evaluation of quercetin-loaded lecithin-chitosan nanoparticles for topical delivery. International journal of nanomedicine, 6, 1621.
  • Balcerzak, M., Tyburska, A., & Święcicka-Füchsel, E. (2008). Selective determination of Fe (III) in Fe (II) samples by UV-spectrophotometry with the aid of quercetin and morin. Acta pharmaceutica, 58(3), 327-334.
  • Turkyilmaz, H., Kartal, T., & Yildiz, S. Y. (2014). Optimization of lead adsorption of mordenite by response surface methodology: characterization and modification. Journal of Environmental Health Science and Engineering, 12(1), 5.
  • Goktas, F. M., Sahin, B., & Yigitarslan, S. (2015). Production of sterilizing agents from Calendula officinalis extracts optimized by response surface methodology. International journal of analytical chemistry, 2015.
  • Dashtianeh, M., Vatanara, A., Fatemi, S., & Sefidkon, F. (2013). Optimization of supercritical extraction of Pimpinella affinis Ledeb. using response surface methodology. Journal of CO2 Utilization, 3, 1-6.
  • Levin, L., Herrmann, C., & Papinutti, V. L. (2008). Optimization of lignocellulolytic enzyme production by the white-rot fungus Trametes trogii in solid-state fermentation using response surface methodology. Biochemical Engineering Journal, 39(1), 207-214.
  • Zhao, Y., Hou, Y., Tang, G., Cai, E., Liu, S., Yang, H., ... & Wang, S. (2014). Optimization of ultrasonic extraction of phenolic compounds from Epimedium brevicornum maxim using response surface methodology and evaluation of its antioxidant activities in vitro. Journal of analytical methods in chemistry, 2014.
  • Sun, Z., Su, R., Qiao, J., Zhao, Z., & Wang, X. (2014). Flavonoids extraction from Taraxacum officinale (Dandelion): optimisation using response surface methodology and antioxidant activity. Journal of Chemistry, 2014.
  • Chang, C. C., Yang, M. H., Wen, H. M., & Chern, J. C. (2002). Estimation of total flavonoid content in propolis by two complementary colorimetric methods. Journal of food and drug analysis, 10(3).
  • Hesap, E., & Yigitarslan, S. Investigation of Microwave-assisted Extraction Conditions of Quercetin from Cinnamonum zeylaniccum with Response Surface Methodology. Parameters, 1, 0.

Optimization of Ultrasonic Extraction of Total Flavonoids from Cinnamonum zeylaniccum

Year 2017, Volume: 4 Issue: 3, Special Issue 1, 108 - 116, 25.11.2017
https://doi.org/10.21448/ijsm.363832

Abstract

Cancer is the most widespread disease in the world currently.
The availability of using controlled-drug-releasing capsules for those cancer diseases
had become more and more important. The initial operation of the production process
of the capsules requires the extraction of the active ingredients from the plant.
Phytochemicals exert positive effects on human health and thus they are important
compounds found in medicinal plants like Cinnamonum
zeylaniccum
. Flavonoids are the most effective phytochemicals having more than
four thousand different types and they are well known antioxidants especially used
in treatments of cancer diseases. In the light of these information, the aim of
this study was to optimize the ultrasonic extraction of flavonoids (as a raw-material
fort he capsules) from Cinnamonum zeylaniccum
with methanol by using Response Surface Methodology. Batch extraction experiments
had been carried out with the parameters of solid-to-liquid ratio, extraction temperature
and time, by applying ultrasounds on sweep mode. Multi-parameter optimization was
carried out with three-parameter, three-level, three-centered Box-Behnken design
considering the optimum values obtained in single-parameter optimization. Design-Expert
software was used to obtain the function representing the extraction yield surface
depending on the selected parameters. As a result of the statistical analysis, the
function expressing the effect of the parameters on the resulting amount of quercetin
production in industry had been derived as reduced cubic model. Solid-to-liquid
ratio was found as the most effective parameter on the extraction yield. At the
optimum conditions (30°C, 1/10 g/ml, and 15 minutes), 12.34 mg quercetin equivalent
total flavonoids were extracted.

References

  • Yıldırım, M. E., Canbal, M., Ozyuvali, E., & Karataş, Ö. F. (2016). Urological recommedations of Hadji Pasha’s, a Turkish aged doctor in Anatolia. Avicenna journal of phytomedicine, 6(5), 502.
  • Murakami, A., Ashida, H., & Terao, J. (2008). Multitargeted cancer prevention by quercetin. Cancer letters, 269(2), 315-325.
  • Pavun, L., Đurđević, P., Jelikić-Stankov, M., Đikanović, D., Ćirić, A., & Uskoković-Marković, S. (2014). Spectrofluorimetric determination of quercetin in pharmaceutical dosage forms. Macedonian Journal of Chemistry and Chemical Engineering, 33(2), 209-215.
  • Jeong, J. H., An, J. Y., Kwon, Y. T., Rhee, J. G., & Lee, Y. J. (2009). Effects of low dose quercetin: Cancer cell‐specific inhibition of cell cycle progression. Journal of cellular biochemistry, 106(1), 73-82.
  • Canivenc-Lavier, M. C., Vernevaut, M. F., Totis, M., Siess, M. H., Magdalou, J., & Suschetet, M. (1996). Comparative effects of flavonoids and model inducers on drug-metabolizing enzymes in rat liver. Toxicology, 114(1), 19-27.
  • Moon, Y. J., Wang, X., & Morris, M. E. (2006). Dietary flavonoids: effects on xenobiotic and carcinogen metabolism. Toxicology in vitro, 20(2), 187-210.
  • Liu, Y., & Guo, M. (2015). Studies on transition metal-quercetin complexes using electrospray ionization tandem mass spectrometry. Molecules, 20(5), 8583-8594.
  • Cornard, J. P., & Merlin, J. C. (2002). Spectroscopic and structural study of complexes of quercetin with Al (III). Journal of Inorganic Biochemistry, 92(1), 19-27.
  • Tan, Q., Liu, W., Guo, C., & Zhai, G. (2011). Preparation and evaluation of quercetin-loaded lecithin-chitosan nanoparticles for topical delivery. International journal of nanomedicine, 6, 1621.
  • Balcerzak, M., Tyburska, A., & Święcicka-Füchsel, E. (2008). Selective determination of Fe (III) in Fe (II) samples by UV-spectrophotometry with the aid of quercetin and morin. Acta pharmaceutica, 58(3), 327-334.
  • Turkyilmaz, H., Kartal, T., & Yildiz, S. Y. (2014). Optimization of lead adsorption of mordenite by response surface methodology: characterization and modification. Journal of Environmental Health Science and Engineering, 12(1), 5.
  • Goktas, F. M., Sahin, B., & Yigitarslan, S. (2015). Production of sterilizing agents from Calendula officinalis extracts optimized by response surface methodology. International journal of analytical chemistry, 2015.
  • Dashtianeh, M., Vatanara, A., Fatemi, S., & Sefidkon, F. (2013). Optimization of supercritical extraction of Pimpinella affinis Ledeb. using response surface methodology. Journal of CO2 Utilization, 3, 1-6.
  • Levin, L., Herrmann, C., & Papinutti, V. L. (2008). Optimization of lignocellulolytic enzyme production by the white-rot fungus Trametes trogii in solid-state fermentation using response surface methodology. Biochemical Engineering Journal, 39(1), 207-214.
  • Zhao, Y., Hou, Y., Tang, G., Cai, E., Liu, S., Yang, H., ... & Wang, S. (2014). Optimization of ultrasonic extraction of phenolic compounds from Epimedium brevicornum maxim using response surface methodology and evaluation of its antioxidant activities in vitro. Journal of analytical methods in chemistry, 2014.
  • Sun, Z., Su, R., Qiao, J., Zhao, Z., & Wang, X. (2014). Flavonoids extraction from Taraxacum officinale (Dandelion): optimisation using response surface methodology and antioxidant activity. Journal of Chemistry, 2014.
  • Chang, C. C., Yang, M. H., Wen, H. M., & Chern, J. C. (2002). Estimation of total flavonoid content in propolis by two complementary colorimetric methods. Journal of food and drug analysis, 10(3).
  • Hesap, E., & Yigitarslan, S. Investigation of Microwave-assisted Extraction Conditions of Quercetin from Cinnamonum zeylaniccum with Response Surface Methodology. Parameters, 1, 0.
There are 18 citations in total.

Details

Primary Language English
Subjects Structural Biology
Journal Section Articles
Authors

Seyma Balcı This is me

Sibel Yiğitarslan

Publication Date November 25, 2017
Submission Date May 4, 2017
Published in Issue Year 2017 Volume: 4 Issue: 3, Special Issue 1

Cite

APA Balcı, S., & Yiğitarslan, S. (2017). Optimization of Ultrasonic Extraction of Total Flavonoids from Cinnamonum zeylaniccum. International Journal of Secondary Metabolite, 4(3, Special Issue 1), 108-116. https://doi.org/10.21448/ijsm.363832
International Journal of Secondary Metabolite

e-ISSN: 2148-6905