Li Yifan, Zheng Zhuoyun, Zhu Songming, Ramaswamy Hosahalli S, Yu Yong
College of Biosystems Engineering and Food Science, Zhejiang University, 866 Yuhangtang Road, Hangzhou 310058, China.
Key Laboratory of Equipment and Informatization in Environment Controlled Agriculture, Ministry of Agriculture, 866 Yuhangtang Road, Hangzhou 310058, China.
Foods. 2020 Nov 26;9(12):1742. doi: 10.3390/foods9121742.
Non-thermal processing of milk can potentially reduce nutrient loss, and a low-temperature-high-pressure (LTHP) treatment is considered as a promising alternative to thermal treatment, attracting considerable attention in recent years. The effect of LTHP treatment (-25 °C, 100-400 MPa) on the phase transition behavior of frozen milk was evaluated. The lethal and injured effects of different pressures and cycle numbers on in frozen milk were studied by using selective and non-selective enumeration media. Results from the gathered transient time-temperature-pressure data showed that pressures over 300 MPa could induce a phase transition from Ice I to Ice III. The treatment at -25 °C and 300 MPa could achieve a lethal effect similar to the two-cycle treatment of 400 MPa at room temperature. This meant that LTHP conditions can lower the operating pressure by at least 100 MPa or reduce the operation from two cycle to one cycle. Increasing the number of pressure cycles enhanced the lethal effects, which was not additive, but resulted in a transformation of part of the injured cells into dead cells. Transmission electron microscopy (TEM) and scanning electron microscopy (SEM) provided direct evidence for the breakdown of cell membrane and cell walls by phase transitions. Combined with a designed internal cooling device, the LTHP process can be expected to be a more attractive alternative to non-thermal processing for the dairy industry.
牛奶的非热加工有可能减少营养成分损失,低温高压(LTHP)处理被认为是热处理的一种有前景的替代方法,近年来备受关注。评估了低温高压处理(-25°C,100 - 400 MPa)对冷冻牛奶相变行为的影响。通过使用选择性和非选择性计数培养基研究了不同压力和循环次数对冷冻牛奶中细菌的致死和损伤作用。收集的瞬态时间 - 温度 - 压力数据结果表明,超过300 MPa的压力可诱导从冰I到冰III的相变。在-25°C和300 MPa下的处理可实现与室温下400 MPa的两循环处理相似的致死效果。这意味着低温高压条件可将操作压力至少降低100 MPa或使操作从两循环减少到一循环。增加压力循环次数可增强致死效果,这不是累加性的,而是导致部分受损细胞转变为死亡细胞。透射电子显微镜(TEM)和扫描电子显微镜(SEM)为相变导致细胞膜和细胞壁破裂提供了直接证据。结合设计的内部冷却装置,低温高压工艺有望成为乳制品行业非热加工更具吸引力的替代方法。