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Articles

Ice crystal growth of living onion epidermal cells as affected by freezing rates

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Pages 606-617 | Received 15 Jun 2017, Accepted 07 Feb 2018, Published online: 03 May 2018

References

  • Kim, Y.H.; Liesse, C.; Kemp, R.; Balan, P. Evaluation of Combined Effects of Ageing Period and Freezing Rate on Quality Attributes of Beef Loins. Meat Science, 2015, 110, 40–45.
  • Sigfusson, H.; Ziegler, G. R.; Coupland, J. N. Ultrasonic Monitoring of Food Freezing. Journal of Food Engineering, 2004, 62(3), 263–269.
  • Zhang, X.; Chu, X.; Ji, H.; Wang, Y. Effect of Freezing Rate on the Onion Cell Deformation Evaluated by Digital Image Correlation. Food Analytical Methods, 2016, 9(11), 3125–3132.
  • Alizadeh, E.; Chapleau, N.; de-Lamballerie, M.; Le-Bail, A. Impact of Freezing Process on Salt Diffusivity of Seafood: Application to Salmon (Salmo Salar) Using Conventional and Pressure Shift Freezing. Food and Bioprocess Technology, 2008, 2(3), 257–262.
  • Martino, M.N.; Otero, L.; Sanz, P.D.; Zaritzky, N.E. Size and Location of Ice Crystals in Pork Frozen by High-Pressure-Assisted Freezing as Compared to Classical Methods. Meat Science, 1998, 50(3), 303–313.
  • Martino, M. N.; Zaritzky, N. E. Fixing Conditions in the Freeze Substitution Technique for Light Microscopy Observation of Frozen Beef Tissue. Food Microstructure, 1986, 5(1), 19–24.
  • Petzold, G.; Aguilera, J. M. Ice Morphology: Fundamentals and Technological Applications in Foods. Food Biophysics, 2009, 4(4), 378–396.
  • Asahina, E.;. The Freezing Process of Plant Cell; Contributions from the Institute of Low Temperature Science, 1956; Vol. 10, pp 83–126.
  • Kaale, L.D.; Eikevik, T M.; Bardal, T.; Kjorsvik, E.; Nordtvedt, T S. The Effect of Cooling Rates on the Ice Crystal Growth Inair-Packed Salmon Fillets during Superchilling Andsuperchilled Storage. International Journal of Refrigeration, 2013, 36(1), 110–119.
  • Mazur, P.;. Freezing of Living Cells: Mechanisms and Implications. American Journal of Physiology, 1984, 247(3 Pt 1), C125.
  • Mcgrath, J. J.; Cravalho, E. G.; Huggins, C. E. An Experimental Comparison of Intracellular Ice Formation and Freeze-Thaw Survival of HeLa S-3 Cells. Cryobiology, 1975, 12(6), 540–550.
  • Seki, S.; Mazur, P. The Temperature and Type of Intracellular Ice Formation in Preimplantation Mouse Embryos as a Function of the Developmental Stage. Biology of Reproduction, 2010, 82(6), 1198–1205.
  • Do, G.-S.; Sagara, Y.; Tabata, M.; Kudoh, K-I.; Higuchi, T. Three-Dimensional Measurement of Ice Crystals in Frozen Beef with a Micro-Slicer Image Processing System. International Journal of Refrigeration, 2004, 27(2), 184–190.
  • Pegg, D. E.;. The Relevance of Ice Crystal Formation for the Cryopreservation of Tissues and Organs. Cryobiology, 2010, 60(3 Suppl), S36–44.
  • Payne, S.R.; Sandford, D.; Harris, A.; Young, O.A. The Effects of Antifreeze Proteins on Chilled and Frozen Meat. Meat Science, 1994, 37(3), 429.
  • Chen, Y. L.; Pan, B. S. Morphological Changes in Tilapia Muscle following Freezing by Airblast and Liquid Nitrogen Methods. International Journal of Food Science & Technology, 1997, 32(2), 159–168.
  • Woinet, B.; Andrieu, J.; Laurent, M.; Min, S.G. Experimental and Theoretical Study of Model Food Freezing. Part II. Characterization and Modelling of the Ice Crystal Size. Journal of Food Engineering, 1998, 35(4), 395–407.
  • Luyet, B. J.; Gibbs, M. C. On the Mechanism of Congelation and of Death in the Rapid Freezing of Epidermal Plant Cells. Protoplasma, 1938, 30(1), 319–419.
  • Palta, J. P.; Levitt, J.; Stadelmann, E. J. Freezing Tolerance of Onion Bulbs and Significance of Freeze-Induced Tissue Infiltration. Cryobiology, 1977, 14(5), 614.
  • Palta, J. P.; Levitt, J.; Stadelmann, E. J. Freezing Injury in Onion Bulb Cells: II. Post-Thawing Injury or Recovery. Plant Physiology, 1977, 60(3), 398–401.
  • Palta, J. P.; Levitt, J.; Stadelmann, E. J. Freezing Injury in Onion Bulb Cells. Plant Physiology, 1977, 60(3), 398–401.
  • Brown, M. S.; Pereira, E. S.; Finkle, B. J. Freezing of Nonwoody Plant Tissue: II. Cell Damage and the Fine Structure of Freezing Curves. Plant Physiology, 1974, 53(5), 709–711.
  • Brown, M. S.;. Freezing of Nonwoody Plant Tissues. IV. Nucleation Sites for Freezing and Refreezing of Onion Bulb Epidermal Cells. Cryobiology, 1980, 17(2), 184–186.
  • Tsuruta, T.; Kawamizu, T.; Nonaka, I.; Masuoka, T.; Experimental Study on Freezing of Onion Skin Cells: Intracellular Ice Formation and Dehydration with Extracellular Solution. Nihon Kikai Gakkai Ronbunshu B Hen/transactions of the Japan Society of Mechanical Engineers Part B, 1996, 62(598), 2446–2451.
  • Stott, S. L.; Karlsson, J. O. Visualization of Intracellular Ice Formation Using High-Speed Video Cryomicroscopy. Cryobiology, 2009, 58(1), 84–95.
  • Zhang, X.; Yang, G.; Zhan, N.; Ji, H. Gray Change Detection Method for Damage Monitoring in Materials. Applied Optics, 2015, 54(4), 934–939.
  • Zhang, X.; Wang, Y.; Yang, J.; Qiao, Z.; Ren, C.; Chen, C. Deformation Analysis of Ferrite/Pearlite Banded Structure under Uniaxial Tension Using Digital Image Correlation. Opt. Lasers Eng., 2016, 85, 24–28.
  • Bevilacqua, A.; Zaritzky, N. E.; Calvelo, A. Histological Measurements of Ice in Frozen Beef. Optics & Lasers in Engineering, 1979, 14(3), 237–251.
  • Kerr, W.L. Texture in frozen foods. In: Handbook of Frozen Foods. (Hui, Y.H.; Cornillon, P.; Legaretta, I.G.; Lim, M.H.; Murrell, K.D.; Nip, W.K. eds.), 2004, NewYork: Marcel Dekker, 149–168.
  • Kaale, L.D.; Eikevik, T M.; Bardal, T.; Kjorsvik, E. A Study of the Ice Crystals in Vacuum-Packed Salmon Fillets (Salmon Salar) during Superchilling Process and following Storage. Journal of Food Engineering, 2013, 115(1), 20–25.
  • Dong, X.L.; Zhang, C.; Feng, X.; Duan, Z. Analysis and Improvement of Accuracy, Sensitivity, and Resolution of the Coherent Gradient Sensing Method. Applied Optics, 2016, 55(17), 4752–4758.
  • Kaale, L.D.; Eikevik, T M.; Rustad, T.; Nordtvedt, T S.; Bardal, T.; Kjørsvik, E. Ice Crystal Development in Pre-Rigor Atlantic Salmon Fillets during Superchilling Process and following Storage. Food Control, 2013, 31(2), 491–498.