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水下等离子体气泡对水进行消毒过程中酿酒酵母的失活:活性物种的优先产生及亚细胞机制

Saccharomyces cerevisiae inactivation during water disinfection by underwater plasma bubbles: Preferential reactive species production and subcellular mechanisms.

作者信息

Zhu Mengying, Zhou Renwu, Zhang Mingyan, Feng Yue, Wang Xiaoran, Yuan Shuai, Gan Dingwei, Sun Jing, Zhou Rusen, Ma Ruonan, Liu Dingxin, Cullen Patrick J

机构信息

State Key Laboratory of Electrical Insulation and Power Equipment, Center for Plasma Biomedicine, Xi'an Jiaotong University, Xi'an City 710049, PR China.

State Key Laboratory of Electrical Insulation and Power Equipment, Center for Plasma Biomedicine, Xi'an Jiaotong University, Xi'an City 710049, PR China.

出版信息

Water Res. 2025 Apr 1;273:123081. doi: 10.1016/j.watres.2024.123081. Epub 2024 Dec 31.

Abstract

The escalating challenges posed by water resource contamination, especially exacerbated by health concerns associated with microbial fungi threats, necessitate advanced disinfection technologies. Within this context, non-thermal plasma generated within bubble column reactors emerges as a promising antifungal strategy. The effects of direct plasma bubbles within different discharge modes and thus-produced plasma activated water (PAW) on the inactivation of Saccharomyces cerevisiae are investigated. Results show that plasma bubbles generated by dielectric barrier discharge (DBD) mode can effectively inactivate yeast cells (∼4.44 logs reduction) within 1 min, outperforming the spark discharge (SD). In this case, SD can cause a significant portion of cell necrosis, possibly due to the high electric field at the bubble interface. In PAW, DBD and SD produce different dominant long-lived oxygen and nitrogen species, while the crucial short-lived species in yeast apoptosis are both attributed to the singlet oxygen (O) as confirmed by scavenger tests. The detection of intracellular reactive oxygen species and antioxidant enzymes further illustrates the role of PAW in triggering apoptosis. Overall, this study demonstrates the discharge mode-dependent modulation of reactive species chemistry in plasma-liquid interactions and provides new insights into the subcellular mechanism of plasma-enabled yeast inactivation for water resource decontamination.

摘要

水资源污染带来的挑战不断升级,尤其是与微生物真菌威胁相关的健康问题加剧了这一情况,因此需要先进的消毒技术。在此背景下,鼓泡塔反应器中产生的非热等离子体成为一种有前景的抗真菌策略。研究了不同放电模式下直接产生的等离子体气泡以及由此产生的等离子体活化水(PAW)对酿酒酵母灭活的影响。结果表明,介质阻挡放电(DBD)模式产生的等离子体气泡可在1分钟内有效灭活酵母细胞(减少约4.44个对数),优于火花放电(SD)。在这种情况下,SD会导致很大一部分细胞坏死,这可能是由于气泡界面处的高电场所致。在PAW中,DBD和SD产生不同的主要长寿命氧和氮物种,而酵母凋亡中的关键短寿命物种均归因于单线态氧(O),清除剂测试证实了这一点。细胞内活性氧和抗氧化酶的检测进一步说明了PAW在触发凋亡中的作用。总体而言,本研究证明了等离子体-液体相互作用中活性物种化学的放电模式依赖性调制,并为等离子体实现酵母灭活用于水资源净化的亚细胞机制提供了新见解。

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