Li Xuejie, Gu Nixuan, Ye Yanrui, Lan Haifeng, Peng Fang, Peng Gongyong
School of Food Science and Engineering, Guangdong Province Key Laboratory for Green Processing of Natural Products and Product Safety, Engineering Research Center of Starch and Vegetable Protein Processing Ministry of Education, South China University of Technology, Guangzhou, China.
Research Institute for Food Nutrition and Human Health, Guangzhou, China.
Front Microbiol. 2023 Jan 4;13:1104875. doi: 10.3389/fmicb.2022.1104875. eCollection 2022.
It has been reported that about a quarter of the world's agriculture products is unable to be consumed each year because of mold contamination, resulting in incalculable economic losses. Despite modern food technology and the various preservation techniques available, the problem of mold contamination of food is still not adequately controlled. In this study, we simulated the biofilm formed by and in liquid and solid food in 96 well cell culture plates and polycarbonate membrane models, respectively, and investigated the fungicidal effect of IPL on planktonic and biofilm molds at three different capacitance parameters at room and refrigerator temperatures. The results show that IPL can achieve fungicidal rates of over 99% for planktonic molds and over 90% for biofilm molds, and that the smaller the capacitance, the more frequent the irradiation required to achieve the same fungicidal rate. In addition, temperature, or have no effect on the fungicidal effect of IPL. We believe that IPL is a promising non-thermal physical sterilization technique for fungal inhibition on food surfaces.
据报道,由于霉菌污染,每年约四分之一的世界农产品无法食用,造成了无法估量的经济损失。尽管有现代食品技术和各种可用的保鲜技术,但食品霉菌污染问题仍未得到充分控制。在本研究中,我们分别在96孔细胞培养板和聚碳酸酯膜模型中模拟了 和 在液体和固体食品中形成的生物膜,并研究了在室温和冰箱温度下,IPL在三个不同电容参数下对浮游霉菌和生物膜霉菌的杀菌效果。结果表明,IPL对浮游霉菌的杀菌率可达到99%以上,对生物膜霉菌的杀菌率可达到90%以上,并且电容越小,达到相同杀菌率所需的照射频率越高。此外,温度、 或 对IPL的杀菌效果没有影响。我们认为,IPL是一种很有前途的非热物理杀菌技术,可用于抑制食品表面的真菌。