Laboratory of Bioelectrics, Center for Physical Sciences and Technology, State Research Institute, Sauletekio Ave. 3, 10257, Vilnius, Lithuania.
Micro and Nanodevices Laboratory, Institute of Solid State Physics, University of Latvia, Kengaraga Str. 8, Riga, 1063, Latvia.
Sci Rep. 2023 Jun 29;13(1):10573. doi: 10.1038/s41598-023-37719-4.
Pulsed electric field (PEF) treatment is known to cause plasma membrane permeabilization of microorganisms, an effect known as electroporation. PEF treatment is very attractive since it can achieve permeabilization with or without lethal damage in accordance with desired results. This study aimed to expand the accomplishment of electroporation outcomes by applying sudden post-PEF osmotic composition change of the media. Changes in yeast cells' viability, size and plasma membrane regeneration rate were evaluated. However, we still have questions about the intracellular biochemical processes responsible for plasma membrane recovery after electroporation. Our suggested candidate is the high osmolarity glycerol (HOG) kinase pathway. The HOG pathway in Saccharomyces cerevisiae yeasts is responsible for volume recovery after dangerous shape modifications and intracellular water disbalance caused by environmental osmotic pressure changes. Thus, we evaluated the HOG pathway inactivation effect on S. cerevisiae's reaction to PEF treatment. Results showed that Hog1 deficient S. cerevisiae cells were considerably more sensitive to electric field treatment, confirming a link between the HOG pathway and S. cerevisiae recovery process after electroporation. By suddenly changing the osmolarity of the media after PEF we influenced the cells' plasma membrane recovery rate, severity of permeabilization and survivability of yeast cells. Studies of electroporation in combination with various treatments might improve electric field application range, efficiency, and optimization of the process.
脉冲电场 (PEF) 处理已知会导致微生物的细胞膜通透性增加,这种效应被称为电穿孔。PEF 处理非常有吸引力,因为它可以根据所需的结果实现通透性而不会造成致命损伤。本研究旨在通过应用介质的突然的 PEF 后渗透压组成变化来扩展电穿孔结果的完成。评估了酵母细胞活力、大小和质膜再生率的变化。然而,我们仍然对电穿孔后负责质膜恢复的细胞内生化过程存在疑问。我们建议的候选者是高渗透压甘油 (HOG) 激酶途径。在酿酒酵母中,HOG 途径负责在环境渗透压变化引起的危险形状改变和细胞内水分失衡后进行体积恢复。因此,我们评估了 HOG 途径失活对酿酒酵母对 PEF 处理反应的影响。结果表明,Hog1 缺陷型酿酒酵母细胞对电场处理更为敏感,证实了 HOG 途径与电穿孔后酿酒酵母恢复过程之间的联系。通过在 PEF 后突然改变介质的渗透压,我们影响了细胞的质膜恢复率、通透性严重程度和酵母细胞的存活率。将电穿孔与各种处理方法相结合的研究可能会提高电场应用范围、效率和优化处理过程。