Sains Malaysiana 47(9)(2018): 2017–2026

http://dx.doi.org/10.17576/jsm-2018-4709-09

 

Chemical Changes and Optimisation of Acetous Fermentation Time and Mother of Vinegar Concentration in the Production of Vinegar-like Fermented Papaya Beverage

(Perubahan Kimia dan Pengoptimuman Masa dan Kepekatan Ibu Cuka untuk Fermentasi

Asetus dalam Penghasilan Minuman Buah Betik Terfermentasi Serupa-Cuka)

 

CHING TING KONG1, CHIN WAI HO1, JIN WEI ALVIN LING1, AZWAN LAZIM2, SHAZRUL FAZRY3 & SENG JOE LIM1*

 

1Centre for Biotechnology and Functional Food, Faculty of Science and Technology, Universiti Kebangsaan Malaysia, 43600 UKM Bangi, Selangor Darul Ehsan, Malaysia

 

2Centre for Advanced Materials and Renewable Resources, Faculty of Science and Technology, Universiti Kebangsaan Malaysia, 43600 UKM Bangi, Selangor Darul Ehsan, Malaysia

 

3Tasik Chini Research Centre, Faculty of Science and Technology, Universiti Kebangsaan Malaysia, 43600 UKM Bangi, Selangor Darul Ehsan, Malaysia

 

Diserahkan: 5 Februari 2018/Diterima: 31 Mei 2018

 

ABSTRACT

Fermentation has been long used as a method to produce beverage of various health benefits. In this research, ripe papaya (Carica papaya) was fermented through alcoholic fermentation using Saccharomyces cerevisiae, followed by acetous fermentation using Acetobacter spp. from mother of vinegar, to reduce wastage of this highly perishable Malaysian fruit. The papaya juice was pasteurised prior to the fermentation process. Optimisation of acetous fermentation was carried out using the response surface methodology (RSM) with central composite rotatable design (CCRD). Acetous fermentation time had shown significant effect on all the chemical characteristics while mother of vinegar concentration did not significantly effect on all the chemical characteristics. The vinegar-like fermented papaya beverage which was produced at the optimum point (Fermentation time = 70.80 h and concentration = 40% mother of vinegar) contained 0.37 ± 0.01% reducing sugar, 3.54 ± 0.36% ethanol, 2.46 ± 0.07% acetic acid, 327.89 ± 3.60 mg GAE/ L total phenolic, 2.32 ± 0.17 mg/100 mL ascorbic acid and 52.40 ± 0.23% mg AA/100 mL free-radical scavenging activity. In conclusion, vinegar-like fermented papaya beverage was successfully produced and its chemical compositions changed from papaya juice to wine and vinegar-like beverage with increased bioactive compounds and antioxidative activity.

 

Keywords: Acetous; alcohol; fermentation; optimisation; papaya

 

ABSTRAK

Fermentasi merupakan kaedah yang telah lama digunakan untuk menghasilkan minuman dengan pelbagai faedah kesihatan. Dalam kajian ini, buah betik (Carica papaya) yang ranum telah difermentasi melalui fermentasi alkohol oleh Saccharomyces cerevisiae dan fermentasi asetus oleh Acetobacter spp. daripada ibu cuka bagi mengurangkan pembaziran buah Malaysia yang mudah rosak ini. Jus betik telah dipasteurkan sebelum diperlakukan dengan proses fermentasi. Pengoptimuman fermentasi asetus telah dijalankan melalui kaedah respons permukaan (RSM) dengan reka bentuk berputar komposit berpusat (CCRD). Masa fermentasi asetus mempunyai kesan yang bererti kepada semua ciri kimia manakala kepekatan ibu cuka tidak memberi kesan yang signifikan ke atas semua ciri kimia tersebut. Minuman terfermentasi buah betik serupa-cuka yang dihasilkan pada titik optimum fermentasi asetus (Masa fermentasi = 70.80 jam dan kepekatan = 40% ibu cuka) mengandungi 0.37 ± 0.01% gula, 3.54 ± 0.36% etanol, 2.46 ± 0.07% asid asetik, 327.89 ± 3.60 mg GAE/ L jumlah fenolik, 2.32 ± 0.17 mg/100 mL asid askorbik dan 52.40 ± 0.23% mg AA/100 mL aktiviti pemerangkapan radikal bebas DPPH. Secara kesimpulannya, minuman terfermentasi buah betik serupa-cuka telah berjaya dihasilkan dan perubahan komposisi kimia daripada jus kepada wain dan minuman betik serupa-cuka menunjukkan peningkatan sebatian bioaktif dan aktiviti antioksida.

 

Kata kunci: Alkohol; asetus; buah betik; cuka; fermentasi; pengoptimuman

RUJUKAN

 

Akubor, P.I. 2017. Characterization of fruit wines from baobab (Adansonia digitata), pineapple (Ananas sativus) and carrot (Daucus carota) tropical fruits. Asian Journal of Biotechnology and Bioresource Technology 1(3): 1-10.

Bal, L., Ahmad, T., Senapati, A. & Pandit, P. 2014. Evaluation of quality attributes during storage of guava nectar cv. Lalit from different pulp and TSS ratio. Journal of Food Processing and Technology 5: 329.

Basulto, F.S., Duch, E.S., Y-Gil, F.E., Diaz Plaza, R., Saavedra, A.L. & Santamaria, J.M. 2009. Postharvest ripening and maturity indices for Maradol papaya. Interciencia 34(8): 583-588.

Budak, N.H., Aykin, E., Seydim, A.C., Greene, A.K. & Guzel- Seydim, Z.B. 2014. Functional properties of vinegar. Journal of Food Science 79(5): R757-R764.

Cardwell, T.J., Cattrall, R.W., Cross, G.J., O’connell, G.R., Petty, J.D. & Scollary, G.R. 1991. Determination of titratable acidity of wines and total acidity of vinegars by discontinuous flow analysis using photometric end-point detection. Analyst 116(10): 1051-1054.

Caro, I., Pérez, L., Cantero, D. & Webb, C. 1992. Modelling of ethanol evaporative losses during batch alcohol fermentation. The Chemical Engineering Journal 48(3): B15-B22.

Cheeke, P.R. & Dierenfeld, E.S. 2010. Comparative Animal Nutrition and Metabolism. Oxfordshire: CABI.

Chidi, B., Rossouw, D., Buica, A. & Bauer, F. 2015. Determining the impact of industrial wine yeast strains on organic acid production under white and red wine-like fermentation conditions. South African Journal of Enology and Viticulture 36(3): 316-327.

Chism, G.W. & Haard, N.F. 1996. Characteristics of edible plant tissues. In Food Chemistry, edited by Fennema, O.R. New York: Marcel Dekker Inc. pp. 943-1011.

Coelho, E., Genisheva, Z., Oliveira, J.M., Teixeira, J.A. & Domingues, L. 2017. Vinegar production from fruit concentrates: Effect on volatile composition and antioxidant activity. Journal of Food Science and Technology 54(12): 4112-4122.

Delfini, C. & Formica, J.V. 2001. Wine Microbiology: Science and Technology. Philadelphia: Taylor & Francis.

Dubourdieu, D., Masneuf, I. & Bely, M. 2005. Influence of physiological state of inoculum on volatile acidity production by Saccharomyces cerevisiae during high sugar fermentation. International Journal of Vine and Wine Sciences 39(4): 191-198.

Emde, F. 2014. Ullmann’s Encyclopedia of Industrial Chemistry: Vinegar. Weinheim: Wiley VCH Verlag GmbH & Co.

Erasmus, D.J., Cliff, M. & Van Vuuren, H.J. 2004. Impact of yeast strain on the production of acetic acid, glycerol, and the sensory attributes of icewine. American Journal of Enology and Viticulture 55(4): 371-378.

Fatima, B. & Mishra, A. 2015. Optimization of process parameter for the production of vinegar from banana peel and coconut water. International Journal of Science, Engineering and Technology 3(3): 817-823.

Ferreira, J., Toit, M. & Toit, W.D. 2006. The effects of copper and high sugar concentrations on growth, fermentation efficiency and volatile acidity production of different commercial wine yeast strains. Australian Journal of Grape and Wine Research 12(1): 50-56.

Ho, C.W., Lazim, A.M., Fazry, S., Umi Kalsum, H.Z. & Lim, S.J. 2017a. Varieties, production, composition and health benefits of vinegars: A review. Food Chemistry 221: 1621-1630.

Ho, C.W., Lazim, A.M., Fazry, S., Umi Kalsum, H.Z. & Lim, S.J. 2017b. Effects of fermentation time and pH on soursop (Annona muricata) vinegar production towards its chemical compositions. Sains Malaysiana 46(9): 1505-1512.

Ho, Y.M., Wan Amir Nizam, W.A. & Wan Rosli, W.I. 2016. Antioxidative activities and polyphenolic content of different varieties of malaysian young corn ear and cornsilk. Sains Malaysiana 45(2): 195-200.

Huh, W.K., Lee, B.H., Kim, S.T., Kim, Y.R., Rhie, G.E., Baek, Y.W., Hwang, C.S., Lee, J.S. & Kang, S.O. 1998. D-Erythroascorbic acid is an important antioxidant molecule in Saccharomyces cerevisiae. Molecular Microbiology 30(4): 895-903.

Kongkiattikajor, J. 2015. Enhancement of bioactive compounds of roselle vinegar by co-culture fermentation. Isan Journal of Pharmaceutical Sciences 10(4): 61-74.

Kumar, G.V., Ajay Kumar, K., Raghu, P.G. & Manjappa, S. 2013. Determination of vitamin C in some fruits and vegetables in Davanagere city, (Karanataka)-India. International Journal of Pharmacy & Life Sciences 4(3): 2489-2491.

Lee, P.R., Ong, Y.L., Yu, B., Curran, P. & Liu, S.Q. 2010. Profile of volatile compounds during papaya juice fermentation by a mixed culture of Saccharomyces cerevisiae and Williopsis saturnus. Food Microbiology 27(7): 853-861.

Lešková, E., Kubíková, J., Kováčiková, E., Košická, M., Porubská, J. & Holčíková, K. 2006. Vitamin losses: Retention during heat treatment and continual changes expressed by mathematical models. Journal of Food Composition and Analysis 19(4): 252-276.

Lim, S.J., Wan Aida, W.M., Maskat, M.Y., Mamot, S., Ropien, J. & Mohd, D.M. 2014. Isolation and antioxidant capacity of fucoidan from selected Malaysian seaweeds. Food Hydrocolloids 42: 280-288.

Lingham, T., Besong, S., Ozbay, G. & Lee, J. 2012. Antimicrobial activity of vinegar on bacterial species isolated from retail and local channel catfish (Ictalurus punctatus). Journal of Food Processing and Technology S11-001 2: 25-28.

Malaysia Food Regulations. 1985. Regulation 334. Putrajaya: Ministry of Health, Malaysia.

Mohamad, N.E., Yeap, S.K., Lim, K.L., Mohd Yusof, H., Beh, B.K., Tan, S.W., Ho, W.Y., Sharifuddin, S.A., Jamaluddin, A., Long, K., Nik Abd Rahman, N.M.A. & Alitheen, N.B. 2015. Antioxidant effects of pineapple vinegar in reversing of paracetamol-induced liver damage in mice. Chinese Medicine 10: 3.

Mohd Fadzelly, A.B., Fifilyana, A.K. & Perisamy, E. 2015. Comparison of phytochemicals and antioxidant properties of different fruit parts of selected artocarpus species from Sabah, Malaysia. Sains Malaysiana 44(3): 355-363.

Morales, L.M., González, G.A., Casas, J.A. & Troncoso, A.M. 2001. Multivariate analysis of commercial and laboratory produced sherry wine vinegars: Influence of acetification and aging. European Food Research and Technology 212(6): 676-682.

Nogueira, A., Guyot, S., Marnet, N., Lequéré, J.M., Drilleau, J.F. & Wosiacki, G. 2008. Effect of alcoholic fermentation in the content of phenolic compounds in cider processing. Brazilian Archives of Biology and Technology 51(5): 1025-1032.

Pérez-Gregorio, M.R., Regueiro, J., Alonso-González, E., Pastrana-Castro, L.M. & Simal-Gándara, J. 2011. Influence of alcoholic fermentation process on antioxidant activity and phenolic levels from mulberries (Morus nigra L.). LWT - Food Science and Technology 44(8): 1793-1801.

Randhir, R., Kwon, Y.I. & Shetty, K. 2008. Effect of thermal processing on phenolics, antioxidant activity and health-relevant functionality of select grain sprouts and seedlings. Innovative Food Science & Emerging Technologies 9(3): 355-364.

Sanarico, D., Motta, S., Bertolini, L. & Antonelli, A. 2003. HPLC determination of organic acids in traditional balsamic vinegar of Reggio emilia. Journal of Liquid Chromatography & Related Technologies 26(13): 2177-2187.

Su, M.S. & Chien, P.J. 2007. Antioxidant activity, anthocyanins, and phenolics of rabbiteye blueberry (Vaccinium ashei) fluid products as affected by fermentation. Food Chemistry 104(1): 182-187.

Usman, M., Davidson, J. & Books, M.C. 2015. Health Benefits of Papaya - for Cooking and Healing. Mendon: Mendon Cottage Books.

Van Den Broeck, I., Ludikhuyze, L., Weemaes, C., Van Loey, A. & Hendrickx, M. 1998. Kinetics for isobaric-isothermal degradation of l-ascorbic acid. Journal of Agricultural and Food Chemistry 46(5): 2001-2006.

Vithlani, V.A. & Patel, H.V. 2010. Production of functional vinegar from Indian jujube (Zizyphus mauritiana) and its antioxidant properties. Journal of Food Technology 8(3): 143-149.

Wood, T.M. & Bhat, K.M. 1988. Methods for measuring cellulase activities. Methods in Enzymology 160: 87-112.

Zuhair, R.A., Aminah, A., Sahilah, A.M. & Eqbal, D. 2013. Antioxidant activity and physicochemical properties changes of papaya (Carica papaya L. cv. Hongkong) during different ripening stage. International Food Research Journal 20(4): 1653-1659.

 

 

*Pengarang untuk surat-menyurat; email: joe@ukm.edu.my

 

 

 

 

 

 

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