食品科学 ›› 2026, Vol. 47 ›› Issue (14): 335-342.doi: 10.7506/spkx1002-6630-20260106-030

• 包装贮运 • 上一篇    

不同低温预贮时长对猕猴桃冰温贮藏品质及冷害的影响

李姗林,范思仪,杨泓杉,张欣岩,姜雨汐,邓宇佳,何兴兴,王璇,关文强   

  1. (1.天津商业大学生物技术与食品科学学院,天津市食品生物技术重点实验室,天津 300134;2.中机振华智能装备科技(北京)有限公司,北京 100089;3.天津商业大学 农业农村部农产品低碳冷链重点实验室(部省共建),天津 300134;4.河南省果然风情果业股份有限公司,河南?南阳 474550)
  • 发布日期:2026-08-24
  • 基金资助:
    “十四五”国家重点研发计划重点专项(2022YFD1600700)

Effects of Different Low Temperature Conditioning Durations on the Quality and Chilling Injury of Kiwifruits during Freezing-Point Storage

LI Shanlin, FAN Siyi, YANG Hongshan, ZHANG Xinyan, JIANG Yuxi, DENG Yujia, HE Xingxing, WANG Xuan, GUAN Wenqiang   

  1. (1. Tianjin Key Laboratory of Food Biotechnology, School of Biotechnology and Food Science, Tianjin University of Commerce, Tianjin 300134, China; 2. Zhongji Zhenhua Intelligent Equipment Technology (Beijing) Co. Ltd., Beijing 100089, China; 3. Key Lab of Agricultural Products Low Carbon Cold Chain (Co-construction of Ministry and Province), Ministry of Agriculture and Rural Affairs, Tianjin University of Commerce, Tianjin 300134, China; 4. Henan Guoran Fengqing Fruit Industry Co. Ltd., Nanyang 474550, China)
  • Published:2026-08-24

摘要: 为探究低温预贮(low temperature conditioning,LTC)对猕猴桃冰温贮藏期间冷害调控效果及机理,以‘海沃德’猕猴桃为实验材料,采用48、72、96 h的LTC处理结合冰温(-0.5±0.2)℃条件贮藏,测定果实LTC期间的生理变化及150 d贮藏期间品质指标以及丙二醛(malondialdehyde,MDA)、相对电导率(relative electrical conductivity,REC)、超氧化物歧化酶(superoxide dismutase,SOD)、过氧化氢酶(catalase,CAT)、脂氧合酶(lipoxygenase,LOX)等生理生化指标变化。结果表明:在预贮阶段,LTC处理组猕猴桃比对照组表现出更高的SOD和CAT活性,显著抑制LOX活性,延缓了MDA积累和REC的上升。冰温贮藏期间,LTC处理有效抑制了猕猴桃的冷害、软化和腐烂进程,延缓了硬度、可滴定酸含量下降,降低了质量损失率的上升、呼吸强度和乙烯释放高峰。96 h LTC处理组的效果最为显著,货架期8 d时猕猴桃的冷害率比对照组降低了45.43%;贮藏期间果实SOD和CAT活性最高峰值分别比对照组高42.94%、44.30%。综合认为,LTC处理可通过激活猕猴桃果实活性氧清除系统、减轻膜脂过氧化程度,增强猕猴桃对低温环境的适应性,有效减轻果实冰温贮藏后期冷害、提高贮藏保鲜效果。

关键词: 低温预贮;猕猴桃;冰温贮藏;冷害

Abstract: To investigate the regulatory effect and underlying mechanism of low temperature conditioning (LTC) on chilling injury in kiwifruits during controlled freezing-point storage, ‘Hayward’ kiwifruits were subjected to LTC treatments for 48, 72, and 96 h, followed by storage for 150 days under controlled freezing-point conditions ((−0.5 ± 0.2) ℃). Physiological changes during the conditioning period and quality parameters during subsequent storage were measured, along with variations in physiological and biochemical indicators such as malondialdehyde (MDA) content, relative electrical conductivity (REC), superoxide dismutase (SOD), catalase (CAT), and lipoxygenase (LOX) activity. The results showed that during the conditioning stage, LTC treatment increased the activities of SOD and CAT, significantly inhibited LOX activity, and delayed the accumulation of MDA and the increase in REC compared with the control group. During the controlled freezing-point storage, LTC treatment effectively suppressed chilling injury, softening, and decay in kiwifruits, delayed the decline in firmness, and titratable acid (TA) content, and reduced the increase in mass loss rate, the peaks of respiration rate and ethylene release. LTC treatment for 96 h showed the most pronounced effects: after 8 days of shelf life, the chilling injury rate of kiwifruits was reduced by 45.43% when compared with the control group. During storage, the peak activities of SOD and CAT were 42.94% and 44.30% higher than those in the control group, respectively. In summary, LTC treatment can activate the reactive oxygen species (ROS) scavenging system in kiwifruits, alleviate membrane lipid peroxidation, and enhance the adaptability to low-temperature environments, thereby mitigating chilling injury during subsequent controlled freezing-point storage and maintaining fruit quality.

Key words: low temperature conditioning; kiwifruit; ice temperature storage; chilling injury

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