Sodium thiosulfate refuels the hepatic antioxidant pool reducing ischemia-reperfusion-induced liver injury

化学 脂质过氧化 再灌注损伤 药理学 氧化应激 抗氧化剂 谷胱甘肽二硫化物 谷胱甘肽 肝损伤 活性氧 过氧化脂质 硫代硫酸钠 缺血 生物化学 内科学 生物 医学 无机化学
作者
Adrian T. Press,Luisa Ungelenk,Anna Medyukhina,Samantha A. Pennington,Sándor Nietzsche,Chunyi Kan,Amelie Lupp,Uta Dahmen,Rui Wang,Utz Settmacher,Reinhard Wetzker,Marc Thilo Figge,Mark G. Clemens,Michael Bauer
出处
期刊:Free Radical Biology and Medicine [Elsevier BV]
卷期号:204: 151-160 被引量:13
标识
DOI:10.1016/j.freeradbiomed.2023.04.012
摘要

Ischemia-reperfusion injury is a critical liver condition during hepatic transplantation, trauma, or shock. An ischemic deprivation of antioxidants and energy characterizes liver injury in such cases. In the face of increased reactive oxygen production, hepatocytes are vulnerable to the reperfusion driving ROS generation and multiple cell-death mechanisms. In this study, we investigate the importance of hydrogen sulfide as part of the liver's antioxidant pool and the therapeutic potency of the hydrogen sulfide donors sodium sulfide (Na2S, fast releasing) and sodium thiosulfate (STS, Na2S2O3, slow releasing). The mitoprotection and toxicity of STS and Na2S were investigated on isolated mitochondria and a liver perfusion oxidative stress model by adding text-butyl hydroperoxide and hydrogen sulfide donors. The respiratory capacity of mitochondria, hepatocellular released LDH, glutathione, and lipid-peroxide levels were quantified. In addition, wild-type and cystathionine-γ-lyase knockout mice were subjected to warm selective ischemia-reperfusion injury by clamping the main inflow for 1 h followed by reperfusion of 1 or 24 h. A subset of animals was treated with STS shortly before reperfusion. Glutathione, plasma ALT, and lipid-peroxide levels were investigated alongside mitochondrial changes in structure (electron microscopy) and function (intravital microscopy). Liver tissue necrosis quantified 24 h after reperfusion indicates the net effects of the treatment on the organ. STS refuels and protects the endogenous antioxidant pool during liver ischemia-reperfusion injury. In addition, STS-mediated ROS scavenging significantly reduced lipid peroxidation and mitochondrial damage, resulting in better molecular and histopathological preservation of the liver tissue architecture. STS prevents tissue damage in liver ischemia-reperfusion injury by increasing the liver's antioxidant pool, thereby protecting mitochondrial integrity.
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