Li Jiao, Ma Luyao, Liao Xinyu, Liu Donghong, Lu Xiaonan, Chen Shiguo, Ye Xingqian, Ding Tian
Department of Food Science and Nutrition, National Engineering Laboratory of Intelligent Food Technology and Equipment, Zhejiang University, Hangzhou, China.
Key Laboratory for Agro-Products Postharvest Handling of Ministry of Agriculture, Zhejiang Key Laboratory for Agro-Food Processing, Hangzhou, China.
Front Microbiol. 2018 Oct 16;9:2486. doi: 10.3389/fmicb.2018.02486. eCollection 2018.
Ultrasound has attracted great interest of both industry and scientific communities for its potential use as a physical processing and preservation tool. In this study, O157:H7 was selected as the model microbe to investigate the ultrasound-induced cell death. Slight variations in membrane potential and ion exchanges across membrane induced by low-intensity ultrasound increased the membrane permeability of O157:H7, and this reversible sublethal effect can preserve the viability of O157:H7 and meanwhile be beneficial for bioprocessing application. In comparison, high-intensity ultrasound resulted in irreversible lethal effect on O157:H7, which can be applied in the field of microbial inactivation. In addition, both low- and high-intensity ultrasound induced either physical destruction or trigger genetically encoded apoptosis of O157:H7. Accumulation of reactive oxygen species and decrease of adenosine tri-phosphate might be related to the physiological and biochemical hallmarks of apoptosis, including exposed phosphatidylserine and activated caspases in O157:H7. The result provides novel insight into the mechanisms of non-thermal physical treatment on the inactivation of bacteria and lays foundation for the further research on the cell signaling and metabolic pathway in apoptotic bacteria.
超声作为一种物理加工和保存工具具有潜在用途,已引起工业界和科学界的极大兴趣。在本研究中,选择O157:H7作为模型微生物来研究超声诱导的细胞死亡。低强度超声引起的膜电位和跨膜离子交换的轻微变化增加了O157:H7的膜通透性,这种可逆的亚致死效应可以保持O157:H7的活力,同时有利于生物加工应用。相比之下,高强度超声对O157:H7产生不可逆的致死效应,可应用于微生物灭活领域。此外,低强度和高强度超声均可诱导O157:H7发生物理破坏或触发基因编码的凋亡。活性氧物质的积累和三磷酸腺苷的减少可能与凋亡的生理生化特征有关,包括O157:H7中磷脂酰丝氨酸的暴露和半胱天冬酶的激活。该结果为非热物理处理细菌灭活机制提供了新的见解,并为进一步研究凋亡细菌中的细胞信号和代谢途径奠定了基础。