• Title/Summary/Keyword: cranberry concentrate

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Quality and Antioxidant Properties of Gelatin Jelly Incorporated with Cranberry Concentrate (크랜베리 농축액을 첨가한 젤리의 품질 및 항산화 활성)

  • Lee, Jun Ho;Ji, Yeo Jin
    • Journal of the Korean Society of Food Science and Nutrition
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    • v.44 no.7
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    • pp.1100-1103
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    • 2015
  • The feasibility of incorporating cranberry concentrate (CC) as a value-added food ingredient in convenient food products was investigated using a model system of gelatin jelly. The pH, hardness, and lightness decreased while soluble solids content and redness increased significantly with increasing levels of CC added (P<0.05). In addition, 2,2-diphenyl-1-picrylhydrazyl and 2,2'-azino-bis(3-ethylbenzothiazoline-6-sulphonic acid) radical scavenging activities increased significantly (P<0.05), and they were well correlated. Consumer acceptance test indicated that addition of CC to 6% had a favorable effect on consumer preferences for most attributes. Based on overall observations, jelly with 6% CC is recommended for taking advantage of functional properties of CC without sacrificing consumer acceptability.

Phenolic plant extracts are additive in their effects against in vitro ruminal methane and ammonia formation

  • Sinz, Susanne;Marquardt, Svenja;Soliva, Carla R.;Braun, Ueli;Liesegang, Annette;Kreuzer, Michael
    • Asian-Australasian Journal of Animal Sciences
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    • v.32 no.7
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    • pp.966-976
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    • 2019
  • Objective: The methane mitigating potential of various plant-based polyphenol sources is known, but effects of combinations have rarely been tested. The aim of the present study was to determine whether binary and 3-way combinations of such phenol sources affect ruminal fermentation less, similar or more intensively than separate applications. Methods: The extracts used were from Acacia mearnsii bark (acacia), Vitis vinifera (grape) seed, Camellia sinensis leaves (green tea), Uncaria gambir leaves (gambier), Vaccinium macrocarpon berries (cranberry), Fagopyrum esculentum seed (buckwheat), and Ginkgo biloba leaves (ginkgo). All extracts were tested using the Hohenheim gas test. This was done alone at 5% of dry matter (DM). Acacia was also combined with all other single extracts at 5% of DM each, and with two other phenol sources (all possible combinations) at 2.5%+2.5% of DM. Results: Methane formation was reduced by 7% to 9% by acacia, grape seed and green tea and, in addition, by most extract combinations with acacia. Grape seed and green tea alone and in combination with acacia also reduced methane proportion of total gas to the same degree. The extracts of buckwheat and gingko were poor in phenols and promoted ruminal fermentation. All treatments except green tea alone lowered ammonia concentration by up to 23%, and the binary combinations were more effective as acacia alone. With three extracts, linear effects were found with total gas and methane formation, while with ammonia and other traits linear effects were rare. Conclusion: The study identified methane and ammonia mitigating potential of various phenolic plant extracts and showed a number of additive and some non-linear effects of combinations of extracts. Further studies, especially in live animals, should concentrate on combinations of extracts from grape seed, green tea leaves Land acacia bark and determine the ideal dosages of such combinations for the purpose of methane mitigation.