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Effect of High-Pressure-Induced Ice I-to-Ice III Phase Transitions on Inactivation of Listeria innocua in Frozen Suspension

机译:高压诱导冰I至冰III相变对冷冻悬浮液中无毒李斯特菌失活的影响

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摘要

The inactivation of Listeria innocua BGA 3532 at subzero temperatures and pressures up to 400 MPa in buffer solution was studied to examine the impact of high-pressure treatments on bacteria in frozen matrices. The state of aggregation of water was taken into account. The inactivation was progressing rapidly during pressure holding under liquid conditions, whereas in the ice phases, extended pressure holding times had comparatively little effect. The transient phase change of ice I to other ice polymorphs (ice II or ice III) during pressure cycles above 200 MPa resulted in an inactivation of about 3 log cycles, probably due to the mechanical stress associated with the phase transition. This effect was independent of the applied pressure holding time. Flow cytometric analyses supported the assumption of different mechanisms of inactivation of L. innocua in the liquid phase and ice I (large fraction of sublethally damaged cells due to pressure inactivation) in contrast to cells subjected to ice I-to-ice III phase transitions (complete inactivation due to cell rupture). Possible applications of high-pressure-induced phase transitions include cell disintegration for the recovery of intracellular components and inactivation of microorganisms in frozen food.
机译:研究了零下温度和压力高达400 MPa的缓冲溶液中无毒李斯特菌BGA 3532的失活,以研究高压处理对冷冻基质中细菌的影响。考虑到水的聚集状态。在液体条件下的保压过程中,灭活迅速进行,而在冰相中,延长保压时间的影响相对较小。在高于200 MPa的压力循环期间,冰I转变为其他冰晶(冰II或冰III)的瞬时相变导致大约3个对数周期失活,这可能是由于与相变相关的机械应力引起的。该效果与施加的压力保持时间无关。与经历冰I至冰III相变的细胞相比,流式细胞仪分析支持以下假设:液相和冰I中无毒李斯特菌失活的不同机制(由于压力失活而导致大部分亚致死性损伤的细胞)由于细胞破裂而完全失活)。高压诱导的相变的可能应用包括细胞崩解,以回收细胞内成分,并使冷冻食品中的微生物失活。

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