富马酸钠对体外缺氧模型的细胞保护作用。

Sovremennye tekhnologii v meditsine Pub Date : 2025-01-01 Epub Date: 2025-02-28 DOI:10.17691/stm2025.17.1.09
A Yu Vinokurov, S V Popov, D Yu Belyakov, D Yu Popov, A S Nikulin, V D Zakrzhevskaya, R G Guseinov, K V Sivak, A V Dunaev, E V Potapova, A Yu Abramov
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引用次数: 0

摘要

缺氧是许多病理和某些生理过程的一部分。由于外科技术限制了被手术器官和组织的血液供应,也会发生这种情况。由于线粒体对三磷酸腺苷(ATP)合成的贡献减少,缺氧导致细胞实现能量依赖过程的能力显著下降。为了保护细胞和延长手术时间,建议在手术前几天输注富马酸钠溶液。然而,观察到的保护作用的机制仍然是一个讨论的主题。本研究旨在探讨富马酸钠在体外急性缺氧模型中对肾上皮细胞的细胞保护作用机制。材料和方法:采用MDCK肾上皮细胞系,用浓度为5 mM的二亚硫酸钠制造缺氧条件。通过共聚焦和宽视场荧光显微镜观察细胞代谢参数(包括线粒体膜电位值、线粒体NADH和FAD状态、细胞质中Ca2+和Mg2+含量和pH水平、细胞对葡萄糖的吸收率和细胞死亡)。采用克拉克电极极谱法测定溶解氧浓度。结果:实验证明,使用二亚硫酸钠可以在体外模拟急性缺氧,细胞培养液中氧浓度迅速下降,导致线粒体功能改变和细胞凋亡进程。在这种情况下,富马酸钠降低了细胞死亡水平,这与线粒体atp生成能力的恢复无关,而是与高能化合物替代来源的贡献增加有关。结论:在细胞水平上,通过优化的缺氧模型,揭示了富马酸钠的保护作用机制,解释了富马酸钠在辅助器官和组织缺血中的抗缺氧作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cytoprotective Action of Sodium Fumarate in an in vitro Model of Hypoxia Using Sodium Dithionite.

Hypoxia is a part of many pathological and some physiological processes. It also occurs as a result of surgical techniques associated with limiting the blood supply to the operated organs and tissues. Hypoxia leads to a significant decrease in the ability of cells to implement energy-dependent processes due to a reduced contribution of mitochondria to the synthesis of adenosine triphosphate (ATP). In order to protect cells and increase the time of surgery, infusion of a solution of sodium fumarate for several days before the surgical procedure is suggested. However, the mechanism of the observed protective effect is still a subject of discussion. The aim of the research was to study the mechanism of the sodium fumarate cytoprotective effect on renal epithelial cells in acute hypoxia modeling in vitro by reducing oxygen in the medium using sodium dithionite.

Materials and methods: The study was conducted using the MDCK renal epithelial cell line with sodium dithionite at a concentration of 5 mM to create hypoxic conditions. The parameters of cellular metabolism (including the value of mitochondrial membrane potential, the state of mitochondrial NADH and FAD, the content of Ca2+ and Mg2+ and the pH level in the cytosol, the rate of glucose absorption by cells, and cell death) were assessed by means of confocal and wide-field fluorescence microscopy. The concentration of dissolved oxygen was established using the polarographic method with a Clark electrode.

Results: It was demonstrated that the use of sodium dithionite allows modeling acute hypoxia in vitro with a rapid decrease in the oxygen concentration in the cell incubation medium, which resulted in a change in mitochondrial function and the apoptosis progression. At that, sodium fumarate reduces the level of cell death, which is associated not with the restoration of the ATP-producing ability of mitochondria, but rather with an increase in the contribution of alternative sources of high-energy compounds.

Conclusion: At the cellular level, using an optimized hypoxia model, the study revealed the mechanism of the protective role of sodium fumarate, which explained the antihypoxant effectiveness in assisted ischemia of organs and tissues.

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