Method Validation and Estimation of Measurement Uncertainty in the Determination of Total Polyphenols Content in Land Spinach by UV-Vis Spectrophotometry

Authors

  • Kuntari Universitas Islam Indonesia
  • Hasby S. Pandhyta Islamic University of Indonesia, Yogyakarta

DOI:

https://doi.org/10.22487/j24775185.2022.v11.i3.pp176-182

Keywords:

Folin-ciocalteu, method validation, phenolic content, UV-Vis, and uncertainty

Abstract

Land spinach contains polyphenols which can be determined by the spectrophotometry method. Data on method validation and estimation of uncertainty measurement of polyphenols in land spinach are not yet available, so method validation and estimation of uncertainty measurement of polyphenol content determination were carried out using a UV-Vis spectrophotometer. The validation parameters of the tested methods include linearity, precision, accuracy, and LOD and LOQ. Analysis of total polyphenol content was carried out using the Folin-Ciocalteu method with the gallic acid standard. Based on the results of method validation, the equation of the line y = 0.7213x-0.0096 with a coefficient of determination (R2) is 0.9994. These results indicate that the correlation between standard concentrations of gallic acid and absorbance shows good linearity. Repeated measurements showed the average total polyphenol content and the estimated measurement uncertainty value was (3.0501±0,2886) mg/Kg GAE. The RSD percentage was obtained at 1.79% were the result entered the acceptance condition because it was ≤ 2%. Percent recovery was obtained at 81.50% and 85.66%, and the terms of acceptance range between 80-110%. The LOD and LOQ values obtained were 0.1024 mg/L and 0.3412 mg/L. Based on the data obtained, it can be said that the method used has good validity.

Author Biography

Hasby S. Pandhyta, Islamic University of Indonesia, Yogyakarta

Diploma of Chemical Analysis – Chemistry Department

References

Agbor, G. A., Vinson, J. A., & Donnelly, P. E. (2014). Folin-ciocalteu reagent for polyphenolic assay. International Journal of Food Science, Nutrition and Dietetics (IJFS), 3(801), 1-10.

Akomeng, N., & Adusei, S. (2021). Organic solvent extraction and spectrophotometric quantification of total phenolic content of soil. Heliyon, 7(1), 1-5.

Alfaris, N. A., Altamimi, J. Z., Alghamdi, F. A., Albaridi, N. A., Alzaheb, R. A., Aljabryn, D. H., Aljahani, A. H., & Almousa, L. A. (2021). Total phenolic content in ripe date fruits (phoenix dactylifera l.): A systematic review and meta-analysis. Saudi Journal of Biological Sciences, 28(6), 3566-3577.

Bastola, K. P., Guragain, Y. N., Bhadriraju, V., & Vadlani, P. V. (2017). Evaluation of standards and interfering compounds in the determination of phenolics by folin-ciocalteu assay method for effective bioprocessing of biomass. American Journal of Analytical Chemistry, 8(6), 416-431.

Bajkacz, S., Baranowska, I., Buszewski, B., Kowalski, B., & Ligor, M. (2018). Determination of flavonoids and phenolic acids in plant materials using SLE-SPE-UHPLC-MS/MS method. Food Analytical Methods, 11(August), 3563–3575.

Caldas, T. W., Mazza, K. E. L., Teles, A. S. C., Mattos, G. N., Brigida. A. I. S., Conte-Junior, C. A., Borguini, R. G., Godoy. R. L. O., Cabral, L. M. C., & Tonon, R. V. (2018). Phenolic compounds recovery from grape skin using conventional and non-conventional extraction methods. Industrial Crops and Products, 111(January), 86-91.

Chan, C. C., Lee, Y. C., Lam, H., & Zhang, X. (2004). Analytical method validation and instrument performance verification. New Jersey, Hokoben: John Wiley & Sons.

Eurachem. (2012). Quantifying uncertainty in analytical measurement. UK: Department of Trade and Industry as Part of The National Measurement System Valid Analytical Measurement (VAM) Program.

Folin, O., & Denis, W. (1912). On phosphotungstic-phosphomolybdic compounds as color reagents. The Journal of Biological Chemistry, 12(2), 239 -243.

Ford, L., Theodoridou, K., Sheldrake, G. N., & Walsh, P. J. (2019). A critical review of analytical methods used for the chemical characterization and quantification of phlorotannin compounds in brown seaweeds. Phytochemical Analysis, 30(6), 587–599.

Gomez-Mejia, E., Rosales-Conrado, N., León-Gonzalez, M. E., & Madrid, Y. (2019). Determination of phenolic compounds in residual brewing yeast using matrix solid-phase dispersion extraction assisted by titanium dioxide nanoparticles. Journal of Chromatography A, 1601(September), 255-265.

Ivanova, V., Stefova, M., & Chinnici, F. (2010). Determination of the polyphenol contents in Macedonian grapes. Journal of The Serbian Chemical Society, 75(1), 45-49.

Kupina, S., Fields, C., Roman, M. C., & Brunelle, S. L. (2018). Determination of total phenolic content using the folin-c assay: single-laboratory validation, first action 2017.13. Journal of AOAC International, 101(5), 1466-1472.

Kusumaningtyas, D. I., Sumarno, D., & Purnama, P. (2016). Estimasi ketidakpastian pengukuran dalam metode penentuan fosfat (P-PO4) secara spektrofotometri. Buletin Teknik Litkayasa, 14(1), 1-8.

Lohani, U. C., & Muthukumarappan, K. (2021). Study of continuous flow ultrasonication to improve total phenolic content and antioxidant activity in sorghum flour and its comparison with batch ultrasonication. Ultrasonics Sonochemistry, 71(March), 1-10.

López, F. O., Domínguez, R., Pateiro, M., Munekata, P. E., Rocchetti, G., & Lorenzo, G. M. (2020). Determination of polyphenols using liquid chromatography–tandem mass spectrometry technique (LC-MS/MS): A Review. MDPI, 9(479), 2-27.

Martinez-Buzi. M., Arredondo, F., González, D., Echeverry, C., Vega-Teijido, M. A., Carvalho, D., Rodríguez-Haralambides, A., Rivera, F., Dajas, F., & Abin-Carriquiry, J. A. (2019). Purification, structural elucidation, antioxidant capacity and neuroprotective potential of the main polyphenolic compounds contained in achyrocline satureioides (LAM) D.C. (compositae). Bioorganic & Medicinal. Chemistry, 27(12), 2579–2591.

Rojas-Ocampo, E., Torrejon-Valqui, L., Munoz-Astecker, L. D., Medina-Mendoza, M., Mori-Mestanza, D., & Castro-Alayo, E. M. (2021). Antioxidant capacity, total phenolic content and phenolic compounds of pulp and bagasse of four Peruvian berries. Heliyon, 7(8), 1-6.

Pereira, G. A., Arruda, H., & Pastore, G. M. (2017). Modification and validation of folin ciocalteu assay for faster and safer analysis of total phenolic content in food samples. Brazilian Journal of Food Research, 9(1), 125-140.

Rajauria, G. (2018). Optimization and validation of reverse phase HPLC method for qualitative and quantitative assessment of polyphenols in seaweed. Journal of Pharmaceutical and Biomedical Analysis, 148(January), 230-237.

Riyanto. (2014). Validasi dan verifikasi metode uji. Yogyakarta: Deepublish.

Sánchez-Rangel, J. C., Benavides, J., Heredia, J. B., Cisneros-Zevallos, L., & Jacobo-Velázquez, D. A. (2013). The folin–ciocalteu assay revisited: improvement of its specificity for total phenolic content determination. Analytical Methods, 5(21), 5990-5999.

Zhong, L., Wu, G., Fang, Z., Wahlqvist, M. L., Hodgson, J. M., Clarke, M. W., Junaldi, E., & Johnson, S. K. (2019). Characterization of polyphenols in Australian sweet lupin (lupinus angustifolius) seed coat by HPLC-DAD-ESI-MS/MS. Food Research International, 116(February), 1153-1162.

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Published

2022-08-30

How to Cite

Kuntari, & Pandhyta, H. S. . (2022). Method Validation and Estimation of Measurement Uncertainty in the Determination of Total Polyphenols Content in Land Spinach by UV-Vis Spectrophotometry. Jurnal Akademika Kimia, 11(3), 176–182. https://doi.org/10.22487/j24775185.2022.v11.i3.pp176-182

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