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Pomegranate and Mint Syrup Addition to Green Tea Beverage Stabilized Its Polyphenolic Content and Biofunctional Potentials During Refrigerated Storage

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Date 2016 May 11
PMID 27162396
Citations 2
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Abstract

The chemical stability of the green tea (GT) preparation during refrigerated storage was investigated following the addition of mint (MS) or pomegranate (PS) syrups, a common habit in the Mediterranean countries that improves the savor of this popular beverage. The supernatants recovered by centrifuging GT supplemented or not with mint (GTMS) or pomegranate (GTPS) syrup were examined for their polyphenolic profiles using the high performance liquid chromatography with diode array detection and electrospray ionization-mass spectrometry. Following storage at 4 °C for 15 days, not-supplemented GT showed a significant decrease (≈92 %) of its phenolic content. However, the decrease was relatively lesser in GTPS (≈36 %) and in GTMS (≈40 %). The observed slight increase of the extractable polyphenolics in PS and MS during the storage might explain in part the relatively limited decrease of GTPS and GTMS total phenolic content. However, chromatographic examination proved that some tea compounds, particularly caffeine, were preserved following PS and MS supplementation. Likewise, syrups'addition to GT significantly (P < 0.5) limited the reduction of its antioxidant capacity as revealed by the DPPH (2,2-diphenyl-1-picrylhydrazyl) and ABTS (2,2'-azino-bis-(3-ethylbenz-thialzoline-6-sulfonic acid)) assays. As expected, the antimicrobial trials showed that Gram (+) Staphylococcus aureus and Staphylococcus epidermidis were the most sensitive strains to tea polyphenols. The syrups supplementation noticeably preserved the tea bacteriostatic and bactericide activities during storage. The obtained analytical results demonstrate that MS or PS addition to green tea beverage stabilized its polyphenolic content and biofunctional properties during refrigerated storage, thus, scientifically supporting this popular practice in the Mediterranean countries.

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References
1.
Fattouch S, Caboni P, Coroneo V, Tuberoso C, Angioni A, Dessi S . Antimicrobial activity of Tunisian quince (Cydonia oblonga Miller) pulp and peel polyphenolic extracts. J Agric Food Chem. 2007; 55(3):963-9. DOI: 10.1021/jf062614e. View

2.
Sroka Z, Fecka I, Cisowski W . Antiradical and anti-H2O2 properties of polyphenolic compounds from an aqueous peppermint extract. Z Naturforsch C J Biosci. 2006; 60(11-12):826-32. DOI: 10.1515/znc-2005-11-1203. View

3.
Xu Y, Chen S, Yuan H, Tang P, Yin J . Analysis of cream formation in green tea concentrates with different solid concentrations. J Food Sci Technol. 2013; 49(3):362-7. PMC: 3614051. DOI: 10.1007/s13197-011-0281-8. View

4.
Yu T, Yamaguchi H, Noshita T, Kidachi Y, Umetsu H, Ryoyama K . Selective cytotoxicity of glycyrrhetinic acid against tumorigenic r/m HM-SFME-1 cells: potential involvement of H-Ras downregulation. Toxicol Lett. 2009; 192(3):425-30. DOI: 10.1016/j.toxlet.2009.11.021. View

5.
Yi D, Tan X, Zhao Z, Cai Y, Li Y, Lin X . Reduced risk of dyslipidaemia with oolong tea consumption: a population-based study in southern China. Br J Nutr. 2013; 111(8):1421-9. DOI: 10.1017/S0007114513003644. View