Increased ROS levels, antioxidant defense disturbances and bioenergetic disruption induced by thiosulfate administration in the brain of neonatal rats.

IF 3.2 3区 医学 Q2 ENDOCRINOLOGY & METABOLISM
Nícolas Manzke Glänzel, Nevton Teixeira da Rosa-Junior, Marian F Signori, Josyane de Andrade Silveira, Camila Vieira Pinheiro, Manuela Bianchin Marcuzzo, Cristina Campos-Carraro, Alex Sander da Rosa Araujo, Helgi B Schiöth, Moacir Wajner, Guilhian Leipnitz
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引用次数: 0

Abstract

Sulfite oxidase deficiencies, either caused by deficiency of the apoenzyme or the molybdenum cofactor, and ethylmalonic encephalopathy are inherited disorders that impact sulfur metabolism. These patients present with severe neurodeterioration accompanied by cerebral cortex and cerebellum abnormalities, and high thiosulfate levels in plasma and tissues, including the brain. We aimed to clarify the mechanisms of such abnormalities, so we assessed the ex vivo effects of thiosulfate administration on energetic status and oxidative stress markers in cortical and cerebellar tissues of newborn rats. Thiosulfate (0.5 µmol/g) or PBS (vehicle) was injected into the fourth ventricle of rat pups. Thirty minutes after the injection, animals were euthanized and the brain structures were utilized for the experiments. Our data showed that thiosulfate decreased the reduced glutathione (GSH) concentrations, and superoxide dismutase (SOD), catalase (CAT) and glutathione S-transferase (GST) activities in the cortical structure. Thiosulfate also increased DCFH oxidation, hydrogen peroxide generation and glutathione reductase activity. In the cerebellum, thiosulfate reduced SOD and glutathione peroxidase activities but increased GST and CAT activities as well as DCFH oxidation. Regarding energy metabolism, thiosulfate specifically decreased complex IV activity in the cortex, whereas it increased cerebellar complex I and creatine kinase activities, indicating bioenergetic disturbances. The results suggest that the accumulation of thiosulfate causing redox disruption and bioenergetic alterations has a prominent role in the pathogenesis of sulfur metabolism deficiencies.

硫代硫酸盐诱导新生大鼠大脑ROS水平升高、抗氧化防御障碍和生物能破坏。
亚硫酸盐氧化酶缺乏症(由脱酶或钼辅助因子缺乏症引起)和乙基丙二酸脑病是影响硫代谢的遗传性疾病。这些患者表现为严重的神经退化,伴有大脑皮层和小脑异常,血浆和组织(包括大脑)中硫代硫酸盐含量高。为了阐明这种异常的机制,我们评估了硫代硫酸盐给药对新生大鼠皮层和小脑组织中能量状态和氧化应激标志物的体外影响。大鼠第四脑室注射硫代硫酸盐(0.5µmol/g)或PBS(载药)。注射后30分钟,动物被安乐死,脑结构被用于实验。我们的数据表明,硫代硫酸盐降低了皮质结构中还原性谷胱甘肽(GSH)浓度,以及超氧化物歧化酶(SOD)、过氧化氢酶(CAT)和谷胱甘肽s -转移酶(GST)的活性。硫代硫酸盐还增加了DCFH氧化、过氧化氢生成和谷胱甘肽还原酶活性。在小脑中,硫代硫酸盐降低了SOD和谷胱甘肽过氧化物酶活性,但增加了GST和CAT活性以及DCFH氧化。在能量代谢方面,硫代硫酸盐特异性地降低了皮质复合体IV的活性,而增加了小脑复合体I和肌酸激酶的活性,表明生物能量紊乱。结果表明,硫代硫酸盐积累引起的氧化还原破坏和生物能量改变在硫代谢缺陷的发病机制中起着重要作用。
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来源期刊
Metabolic brain disease
Metabolic brain disease 医学-内分泌学与代谢
CiteScore
5.90
自引率
5.60%
发文量
248
审稿时长
6-12 weeks
期刊介绍: Metabolic Brain Disease serves as a forum for the publication of outstanding basic and clinical papers on all metabolic brain disease, including both human and animal studies. The journal publishes papers on the fundamental pathogenesis of these disorders and on related experimental and clinical techniques and methodologies. Metabolic Brain Disease is directed to physicians, neuroscientists, internists, psychiatrists, neurologists, pathologists, and others involved in the research and treatment of a broad range of metabolic brain disorders.
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