Hyperbaric storage at and above room temperature of a highly perishable food

被引:0
作者
Liliana G. Fidalgo
Mauro D. Santos
Rui P. Queirós
Rita S. Inácio
Maria J. Mota
Rita P. Lopes
Mafalda S. Gonçalves
Ricardo F. Neto
Jorge A. Saraiva
机构
[1] Universidade de Aveiro,QOPNA, Departamento de Química
来源
Food and Bioprocess Technology | 2014年 / 7卷
关键词
Hyperbaric storage; Under pressure; Food preservation; Red watermelon (; ) juice;
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摘要
Hyperbaric storage at naturally variable room temperature (RT) conditions (18–21 °C) and above (30 °C) was evaluated as a possible new food preservation method, regardless of temperature. Preservation of watermelon juice (used as a case study of a highly perishable food) at RT and 5 °C at atmospheric pressure was compared to preservation under 100 MPa at RT. After 8 h of hyperbaric storage at 100 MPa, the initial microbial loads of the watermelon juice were reduced by 1 log unit for total aerobic mesophiles, and 1–2 log units for Enterobacteriaceae and yeasts and moulds, to levels of about 3 log units for the former and below the detection limit for the latter, and remained thereafter unchanged up to 60 h. Similar results were obtained at 30 °C at 100 MPa after 8 h. At atmospheric pressure at RT (24 h) and 30 °C (8 h), microbial levels were already above quantification limits and unacceptable for consumption. Furthermore, pressure attenuated the increase in titratable acidity verified at atmospheric pressure, but caused higher colour changes, especially a higher lightness and a lower browning degree. Post-hyperbaric storage at 5 °C revealed an extended shelf life, as an additional benefit of hyperbaric storage. These results show that hyperbaric storage is a very promising food preservation methodology.
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页码:2028 / 2037
页数:9
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  • [1] Abe F(2007)Exploration of the effects of high hydrostatic pressure on microbial growth, physiology and survival: perspectives from piezophysiology Bioscience, Biotechnology, and Biochemistry 71 2347-2357
  • [2] Abe F(2000)Tryptophan permease gene TAT2 confers high-pressure growth in Saccharomyces cerevisiae Molecular and Cellular Biology 20 8093-8102
  • [3] Horikoshi K(2012)Watermelon pomace composition and the effect of drying and storage on lycopene content and color Journal of Food Quality 35 331-340
  • [4] Arocho YD(2010)Low UV-C illumination for keeping overall quality of fresh-cut watermelon Postharvest Biology and Technology 55 114-120
  • [5] Bellmer D(2002)Pressure effects on in vivo microbial processes Biochimica et Biophysica Acta (BBA)-Protein Structure and Molecular Enzymology 1595 367-381
  • [6] Maness N(1977)A simple system for extending refrigerated, nonfrozen preservation of biological material using pressure Cryobiology 14 625-636
  • [7] McGlynn W(2007)Characterization of polyphenol oxidase and peroxidase and influence on browning of cold stored strawberry fruit Journal of Agricultural and Food Chemistry 55 3469-3476
  • [8] Rayas–Duarte P(2006)Effect of ultraviolet-C light on quality and microbial population of fresh-cut watermelon Postharvest Biology and Technology 40 256-261
  • [9] Artés-Hernández F(1971)Microbial degradation of organic matter in the deep sea Science 171 672-675
  • [10] Robles PA(1995)Potential food applications of high-pressure effects on ice–water transitions Trends in Food Science & Technology 6 253-259