Fermentation of coconut water by probiotic strains Lactobacillus acidophilus L10 and Lactobacillus casei L26

被引:0
作者
Pin-Rou Lee
Christine Xiaoying Boo
Shao-Quan Liu
机构
[1] National University of Singapore,Food Science and Technology Programme, Department of Chemistry
来源
Annals of Microbiology | 2013年 / 63卷
关键词
Coconut water; Lactic acid bacteria; Minerals; Probiotic;
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学科分类号
摘要
Coconut water is becoming an increasingly popular beverage and sports drink in tropical countries due to its high mineral content. Probiotic fermentation of coconut water would provide consumers with a novel probiotic beverage which can provide both hydration and probiotic benefits. The aim of this study was to assess the growth, survival and fermentation performance of two probiotic bacteria in coconut water. Lactobacillus acidophilus L10 and L. casei L26 grew well in coconut water and showed similar growth patterns. The viable cell count of the two probiotic cultures reached approximately 108 CFU/ml after 2 days fermentation at 37 °C and maintained approximately107–108 CFU/ml after 26 days at 4 °C. Changes in total soluble solids (oBrix), pH, sugars, organic acids and minerals were similar between the two probiotic cultures, except for fructose, glucose, copper, phosphorus and lactic, acetic and malic acids. There were significant variations between the two cultures in their ability to produce and consume these compounds. L. acidophilus produced higher amounts of 2-heptanone, 2-nonanone, benzaldehyde, 2-heptanol, 2-nonanol, δ-octalactone and δ-dodecalactone, whereas L. casei produced higher amounts of acetic acid, diacetyl, acetoin, δ-decalactone, 3-methyl-3-buten-1-ol, linalool, 1-octanol, p-tolualdehyde and ethyl 2-hydroxypropanoate. There was no substantial change in mineral content. These results suggest the feasibility of fermenting coconut water into a probiotic beverage, especially for sports nutrition, with the dual benefits of electrolytes and probiotics.
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页码:1441 / 1450
页数:9
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  • [11] Brummer RJM(2010)Post-exercise rehydration with coconut water Med Sci Sports Exerc 42 575-1485
  • [12] Kleerebezem M(1988)Muscle glycogen synthesis after exercise: effect of time of carbohydrate ingestion J Appl Physiol 64 1480-292
  • [13] Crittenden R(2012)Comparison of coconut water and a carbohydrate-electrolyte sport drink on measures of hydration and physical performance in exercise-trained men J Int Soc Sports Nutr 9 1-95
  • [14] Bird AR(1992)Fluid replacement after dehydration: Influence of beverage carbonation and carbohydrate content Int J Sport Med 13 285-183
  • [15] Gopal P(2010)Requirement of the Appl Environ Microbiol 76 84-131
  • [16] Henriksson A(2012) MaeKR two-component system for L-malic acid utilization via a malic enzyme pathway Food Res Int 45 177-322
  • [17] Lee YK(2003)Effects of sequentially inoculated Int J Food Microbiol 83 115-673
  • [18] Playne MJ(2010) and Nutr Food Sci 40 314-93
  • [19] Dako E(2006) on volatile profiles of papaya wine Meat Sci 73 660-585
  • [20] El Soda M(2011)Practical implications of lactate and pyruvate metabolism by lactic acid bacteria in food and beverage fermentations J Plant Dev 18 87-324