木犀草素减轻链脲佐菌素诱导的糖尿病大鼠模型的海马损伤。

0 MEDICINE, RESEARCH & EXPERIMENTAL
Omur Gulsum Deniz, Hayriye Soytürk, Aydın Him, Dilek Sağir, Ebru Annaç
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引用次数: 0

摘要

糖尿病(DM)是一种慢性代谢性疾病,对人体各重要器官造成长期损害,严重威胁人体健康。它会导致胰岛素抵抗,破坏碳水化合物、脂肪和蛋白质的代谢。本研究旨在通过免疫组织化学、组织病理学、生物化学和分子方法研究木樨素(Lut)对糖尿病诱导的大鼠海马损伤的保护作用。采用链脲佐菌素50 mg/kg (i.p)触发糖尿病海马损伤的实验方法,给药Lut [20 μg/kg,腹腔注射]。实验28 d, 48只大鼠分为6组,每组8只:对照组、DM、柠檬酸缓冲液(溶剂)、DM+Lut、Lut、二甲亚砜(溶剂)。与DM+Lut组相比,DM组Bcl-2基因表达降低,Bax、caspase-3、细胞色素c、激活转录因子-6、肌醇需要酶-1表达水平升高。组织学分析显示,与DM+Lut组相比,DM组的神经元变性、神经炎症和细胞凋亡更大。生化分析也支持这些发现,如氧化应激指数值增加所示。这些结果表明,Lut减轻氧化和内质网应激的毒性作用,增强抗氧化防御,并支持海马功能。研究结果表明,Lut具有预防糖尿病引起的海马损伤的潜力。因此,强烈建议进一步研究Lut作为糖尿病神经退行性疾病的治疗药物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Luteolin mitigates hippocampal damage in a rat model of streptozotocin-induced diabetes.

Diabetes mellitus (DM) is a chronic metabolic disorder that poses a serious threat to human health by causing long-term damage to various vital organs. It leads to insulin resistance and disrupts carbohydrate, fat, and protein metabolism. This study aimed to investigate the protective effects of luteolin (Lut) against diabetes-induced damage in the hippocampus of rats, using immunohistochemical, histopathological, biochemical, and molecular approaches. Lut [20 μg/kg, intraperitoneally (i.p.)] was administered to counteract hippocampal damage induced by diabetes, which was experimentally triggered using streptozotocin at a dose of 50 mg/kg (i.p.). The experiment lasted 28 days and included 48 rats divided into six groups of eight: Control, DM, citrate buffer (solvent), DM+Lut, Lut, and dimethyl sulfoxide (solvent). In the DM group, there was a decrease in Bcl-2 gene expression and an increase in the expression levels of Bax, caspase-3, cytochrome c, activating transcription factor-6, and inositol-requiring enzyme-1, compared to the DM+Lut group. Histological analysis revealed greater neuronal degeneration, neuroinflammation, and apoptosis in the DM group than in the DM+Lut group. Biochemical analysis also supported these findings, as indicated by increased oxidative stress index values. These results suggest that Lut mitigates the toxic effects of oxidative and endoplasmic reticulum stress, enhances antioxidant defenses, and supports hippocampal function. The findings demonstrate Lut's potential to prevent diabetes-induced hippocampal damage. Consequently, further research is strongly recommended to explore Lut as a therapeutic agent for diabetic neurodegeneration.

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