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Research Article

Physicochemical, Antioxidant and Sensory Characteristics of Black Cherry (Prunus Serotina Subsp. Capuli) Fermented Juice

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References

  • Amarowicz, R., and R.B. Pegg.2019. Natural antioxidants of plant origin. p. 1–81. In: eds. I.C.F.R. Ferreira and L. Barros. Advances in Food and Nutrition Research. Vol. 90, Academic Press, USA.
  • AOAC. 2000. Official Methods of Analysis. Association of Analytical Chemist. Inc, Washington, D.C., USA.
  • Baker, A.K., and C.F. Ross. 2014. Sensory evaluation of impact of wine matrix on red wine finish: A preliminary study. J. Sens. Stu. 29(2):139–148. doi: 10.1111/joss.12089.
  • Bauer, R., H. Nieuwoudt, F.F. Bauer, J. Kossmann, K.R. Koch, and K.H. Esbensen. 2008. FTIR Spectroscopy for grape and wine analysis. Analyt. Chem. 80(5):1371–1379. doi: 10.1021/ac086051c.
  • Berenguer, M., S. Vegara, E. Barrajón, D. Saura, M. Valero, and N. Martí. 2016. Physicochemical characterization of pomegranate wines fermented with three different Saccharomyces cerevisiae yeast strains. Food Chem. 190:848–855. doi: 10.1016/j.foodchem.2015.06.027.
  • Bozoglu, M.D., S. Ertunc, B. Akay, N. Bursali, N. Vural, H. Hapoglu, and Y. Demirci. 2015. The effect of temperature, pH and SO2 on ethanol concentration and sugar consumption rate (SCR) in apple wine process. J. Chem. Soc. Pak. 37(3):431–439.
  • Brand-Williams, W., M.E. Cuvelier, and C. Berset. 1995. Use of free radical method to evaluate antioxidant activity. Lebensm. Wiss. Technol. 28:25–30. doi: 10.1016/s0023-6438(95)80008-5.
  • Cedillo-López, D., M.C. Beltrán-Orozco, and M.P. Salgado-Cruz 2006. Cuantificación y estabilidad de los pigmentos presentes en 2 variedades del fruto del capulín (Prunus serotina Ehrenb. subs. capuli (Cav.) McVaught). Paper presented at IV Congreso Internacional de Ingeniería Bioquímica and XV Congreso Nacional de Ingeniería Bioquímica. Colegio Mexicano de Ingenieros Bioquímicos, A. C. Morelia, Michoacán, México. 4-7 April.
  • Conde-Hernández, L.A., and J.A. Guerrero-Beltrán. 2014. Total phenolics and antioxidant activity of Piper auritum and Porophyllum ruderale. Food Chem. 142(1):455–460. doi: 10.1016/j.foodchem.2013.07.078.
  • Dasgupta, A., and K. Klein. 2014. Fruits, vegetables, and nuts: Good sources of antioxidants, p. 209–235. In: A. Dasgupta and K. Klein (eds.). Antioxidants in food, vitamins and supplements. Elsevier, San Diego, CA, USA.
  • Dewanto, V., X. Wu, K.K. Adom, and R.H. Liu. 2002. Thermal processing enhances the nutritional value of tomatoes by increasing total antioxidant activity. J. Agric. Food Chem. 50:3010–3014. doi: 10.1021/jf0115589.
  • EC. 2009. Commission Regulation No. 606/2009. Council Regulation (EC) No 479/2008 as regards the categories of grapevine products, oenological practices and the applicable restrictions. 12 March, 2016. https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=celex%3A32009R0606
  • Giusti, M.M., and R.E. Wrolstad. 2001. Anthocyanins: Characterization and measurement with UVvisible spectroscopy, F1.2, p. 1–13. In: R.E. Wrolstad (ed.). Current protocols in food analytical chemistry. John Wiley & Sons Inc, New York, USA.
  • Guerrero-Beltrán, J.A., J.S. Welti-Chanes, and G.V. Barbosa-Cánovas. 2009. Ultraviolet-C light process of grape, cranberry, and grapefruit juices to inactivate Saccharomyces cerevisiae. J. Food Process. Eng. 32(6):916–932. doi: 10.1111/j.1745-4530.2008.00253.x.
  • Gumienna, M., A. Szwengiel, and B. Górna. 2016. Bioactive components of pomegranate fruit and their transformation by fermentation processes. Eu. Food Res. Technol. 242(5):631–640. doi: 10.1007/s00217-015-2582-z.
  • Hurtado, H.N., and N. Pérez. 2014. Identificación, estabilidad y actividad antioxidante de las antocianinas aisladas de la cáscara del fruto de capulí (Prunus serotina spp. capuli (Cav) Mc. Vaug Cav). Inf. Tecnol. 25(4):131–142. doi: 10.4067/s0718-07642014000400015.
  • ICOP (International Code of Oenological Practices). 12, December 2017. Annex maximum acceptable limits. http://www.oiv.int/public/medias/3741/e-code-annex-maximum-acceptable-limits.pdf
  • INI. 1994. Atlas de las Plantas de la Medicina Tradicional Mexicana. Vol. I. Instituto Nacional Indigenista, Mexico.
  • Jiménez, M., I. Castillo, E. Azuara, and C.I. Beristain. 2011. Actividad antioxidante y antimicrobiana de extractos de capulín (Prunus serotina subsp Capulí). Rev. Mex. Ing. Quim. 10:29–37.
  • Kelly, D.J., G. Downey, and V. Fouratier. 2004. Initial study of honey adulteration by sugar solutions using midinfrared (MIR) spectroscopy and chemometrics. J. Agric. Food Chem. 52:33–39. doi: 10.1021/jf034985q.
  • Kiselova, Y., D. Ivanova, T. Chervenkov, D. Gerova, B. Galunska, and T. Yankova. 2006. Correlation between the in vitro antioxidant activity and polyphenol content of aqueous extracts from Bulgarian herbs. Phytother. Res. 20:961–965. doi: 10.1002/ptr.1985.
  • Kuskoski, E.M., A.G. Asuero, A.M. Troncoso, J. Mancini-Filho, and R. Fett. 2005. Aplicación de diversos métodos químicos para determiner actividad antioxidante en pulpa de frutos. Ciênc. Tecnol. Aliment. Campinas 25(4):726–732.
  • Larmond, E. 1982. Laboratory methods for sensory evaluation of food. Canada Department of Agriculture. Ottawa. Can. Publication 1637:23–24.
  • Lim, J. 2011. Hedonic scaling: A review of methods and theory. Food Qual. Prefer. 22:733–747. doi: 10.1016/j.foodqual.2011.05.008.
  • López, F., J.J. Rodríguez-Bencomo, I. Orriols, and J.R. Pérez-Correa. 2017. Fruit brandies, p. 531–556. In: M.R. Kosseva, V.K. Joshi, and P.S. Panesar (eds.). Science and technology of fruit wine production. Academic Press, London, UK.
  • Luna-Vázquez, J.F., C. Ibarra-Alvarado, A. Rojas-Molina, J.I. Rojas-Molina, E. Yahia, M.D. Rivera-Pastrana, A. Rojas-Molina, and M.A. Zavala-Sánchez. 2013. Nutraceutical value of black cherry Prunus serotina Ehrh. Fruits: Antioxidant and antihypertensive properties. Molecules 18(11):14597–14612. doi: 10.3390/molecules181214597.
  • Mantzourani, I., S. Kazakos, A. Terpou, A. Mallouchos, A. Kimbaris, A. Alexopoulos, E. Bezirtzoglou, and S. Plessas. 2018a. Assessment of volatile compounds evolution, antioxidant activity, and total phenolics content during cold storage of pomegranate beverage fermented by Lactobacillus paracasei K5. Fermentation 4(4):95. doi: 10.3390/fermentation4040095.
  • Mantzourani, I., C. Nouska, A. Terpou, A. Alexopoulos, E. Bezirtzoglou, M.I. Panayiotidis, A. Galanis, and S. Plessas. 2018b. Production of a novel functional fruit beverage consisting of cornelian cherry juice and probiotic bacteria. Antioxidants 7(11):163. doi: 10.3390/antiox7110163.
  • Mantzourani, I., A. Terpou, A. Bekatorou, A. Mallouchos, A. Alexopoulos, A. Kimbaris, E. Bezirtzoglou, A.A. Koutinas, and S. Plessas. 2020. Functional pomegranate beverage production by fermentation with a novel synbiotic L. paracasei biocatalyst. Food Chem. 308:125658. doi: 10.1016/j.foodchem.2019.125658.
  • Mattes, R.D., and D. DiMeglio. 2001. Ethanol perception and ingestion. Physiol. Behav. 72(1–2):217–229. doi: 10.1016/s0031-9384(00)00397-8.
  • Mc Vaugh, R. 1951. A revision of the North American black cherries (Prunus serotina Ehrh) and relatives. Brittonia. 7:279–315. doi:10.2307/280469.
  • Montgomery, D.C. 2017. Design and analysis of experiments. 9th ed. John Wiley & Sons Inc., USA.
  • Ordaz-Galindo, A., P. Wesche-Ebeling, R.E. Wrolstad, L. Rodriguez-Saona, and A. Argaiz-Jamet. 1999. Purification and identification of capulin (Prunus serotina Ehrh) anthocyanins. Food Chem. 65:201–206. doi: 10.1016/S0308-8146(98)00196-4.
  • Ortega, G., A. Bermello, M. Guerra, G. Michelena, G. Castillo, S. Armenteros, G. Mieres, E. Carreras, D. Crespo, S. Matos, et al. 2007. Estudios de separación y caracterización de pigmento en caldos de fermentación de Botryodiplodia theobromae. ICIDCA. Sobre Los Derivados De La Caña De Azúcar. 41:27–34.
  • Palomares-Alonso, F., I.S. Rojas-Tomé, G. Palencia Hernández, M.A. Jiménez-Arellanes, M.L. Macías-Rubalcava, A. González-Maciel, A. Ramos-Morales, R. Santiago-Reyes, N. Castro, I. González-Hernández, et al. 2017. In vitro and in vivo cysticidal activity of extracts and isolated flavanone from the bark of Prunus serotina: A bio-guided study. Acta Trop. 170:1–7. doi: 10.1016/j.actatropica.2017.02.023.
  • Peryam, D.R., and F.J. Pilgrim. 1957. Hedonic scale method of measuring food preferences. Food Technol 11:9–14.
  • Plyler, E. 1952. Infrared spectrum of methanol Ethanol, and N-propanol. J. Res. Natl. Bur. Stand. 48(4):281–286. doi: 10.6028/jres.048.036.
  • Rios-Corripio, G., J. Welti-Chanes, V. Rodríguez-Martínez, and J.A. Guerrero-Beltrán. 2020. Influence of high hydrostatic pressure processing on physicochemical characteristics of a fermented pomegranate (Punica granatum L.) beverage. Innov. Food Sci. Emerg. Technol. 59:102249. doi: 10.1016/j.ifset.2019.102249.
  • Rodríguez, D.L.E. 2011. Determinación de la actividad antioxidante del fruto sin semilla del capulín mexicano (Prunus serotina) e identificación de sus fenoles marcadores mediante CLAR-EM. Depto. Ingeniería en Alimentos, Universidad Autónoma de Querétaro, Querétaro, Mexico, M.Sc. Thesis.
  • Rosas, M.E., and M.J. Fernández. 2012. FTIR aplicada durante la deshidratación osmótica de mango Ataulfo (Magnifera indica L.). Sociedad Mexicana De Ciencia Y Tecnología De Superficies Y Materiales 21:8–13.
  • Secretaría, D.S. 2014. Norma Oficial Mexicana. NOM-142-SSA1/SCFI-2014. Bebidas alcohólicas. Especificaciones sanitarias, Mexico, 12 December. 2017. http://www.dof.gob.mx/nota_detalle.php?codigo=5386313&fecha=23/03/2015
  • SIAP (Servicio de Información Agroalimentaria y Pesquera). 2017. Mexico, 01 December. 2017. http://www.siap.gob.mx/cierre-de-la-produccion-agricola-por-cultivo
  • Singleton, V.L., R. Orthofer, and R.M. Lamuela-Raventos. 1999. Analysis of total phenols and other oxidation substrates and antioxidants by means of Folin-Ciocalteu reagent. 1999. Meth. Enzymol. 299:152–178. doi: 10.1016/s0076-6879(99)99017-1.
  • Stuart, B.H. 2004. Infrared Spectroscopy: Fundamentals and applications. In: Analytical Techniques in the Sciences. John Wiley & Sons, Ltd, USA.
  • Tewari, J., and J. Irudayaraj. 2004. Quantification of saccharides in multiple floral honeys using Fourier transform infrared microattenuated total reflectance spectroscopy. J. Agric. Food Chem. 52(11):3237–3243. doi: 10.1021/jf035176+.
  • Villa, D.T.F. 2008. Frutos del capulín (Prunus serotina) como fuentes potenciales de compuestos bioactivos. Depto. Ingeniería en Alimentos, Universidad Autónoma de Querétaro, Querétaro, Mexico, M.Sc. Thesis.
  • Villamor, R.R., M.A. Evans, and C.F. Ross. 2013. Effects of ethanol, tannin, and fructose concentrations on sensory properties of model red wines. Ame. J. Enology Vitic. 64(3):342–348. doi: 10.5344/ajev.2013.12118.
  • Wiercigroch, E., E. Szafraniec, K. Czamara, M.Z. Pacia, K. Majzner, K. Kochan, and K. Malek. 2017. Raman and infrared spectroscopy of carbohydrates: A review. Spectrochim. Acta Part A. 185:317–335. doi: 10.1016/j.saa.2017.05.045.

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