氨基葡萄糖替代磺脲类药物:IRS-PI3K-PKC-AKT-GLUT4 胰岛素信号通路诱导剂

IF 3.597 Q2 Pharmacology, Toxicology and Pharmaceutics MedChemComm Pub Date : 2024-02-01 DOI:10.1039/D3MD00647F
Ghadeer A. R. Y. Suaifan, Bayan Alkhawaja, Mayadah B. Shehadeh, Mridula Sharmaa, Chan Hor Kuan and Patrick Nwabueze Okechukwu
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摘要

正常情况下,在餐后高血糖状态下,骨骼肌对胰岛素刺激的葡萄糖摄取量占 70-80%。因此,骨骼肌摄取葡萄糖的异常或胰岛素抵抗(IR)被认为是 2 型糖尿病(T2DM)发病机制中最初的代谢缺陷。在全球范围内,T2DM 正以指数比例增长。大多数 T2DM 患者接受磺脲类药物和其他药物的联合治疗,以改善胰岛素敏感性。糖基化磺脲类药物(磺脲-氨基葡萄糖类似物)是磺脲类药物的改良类似物,据报道具有抗糖尿病活性。本研究旨在利用 L6 骨骼肌细胞(体外)和提取的比目鱼肌(体外)模型,从分子水平评估糖基化磺脲类药物对胰岛素信号通路的影响。为了创建体外模型,我们利用高胰岛素-葡萄糖方法在分化的鼠L6肌肉细胞中建立了胰岛素抵抗。此外,在体外模型中,提取成年 Sprague-Dawley 大鼠的比目鱼肌,将其置于含有 25 mmol L-1 葡萄糖和 100 mmol L-1 胰岛素的溶液中 24 小时,以诱导胰岛素抵抗。胰岛素抵抗后,对研究化合物和标准药物(二甲双胍和格列美脲)进行测试。使用 qPCR 评估了参与胰岛素信号通路的 PI3K、IRS-1、PKC、AKT2 和 GLUT4 基因的差异表达。所评估的糖基化磺酰脲类似物在体外和体内均显示出胰岛素依赖通路基因表达的显著增加,证实了受损的胰岛素信号通路基因恢复了活力。总之,本研究中描述的糖基化磺脲类似物是潜在的抗糖尿病治疗药物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Glucosamine substituted sulfonylureas: IRS–PI3K–PKC–AKT–GLUT4 insulin signalling pathway intriguing agent

Normally, skeletal muscle accounts for 70–80% of insulin-stimulated glucose uptake in the postprandial hyperglycemia state. Consequently, abnormalities in glucose uptake by skeletal muscle or insulin resistance (IR) are deemed as initial metabolic defects in the pathogenesis of type 2 diabetes mellitus (T2DM). Globally, T2DM is growing in exponential proportion. The majority of T2DM patients are treated with sulfonylureas in combination with other drugs to improve insulin sensitivity. Glycosylated sulfonylureas (sulfonylurea–glucosamine analogues) are modified analogues of sulfonylurea that have been previously reported to possess antidiabetic activity. The aim of this study was to evaluate the impact of glycosylated sulfonylureas on the insulin signalling pathway at the molecular level using L6 skeletal muscle cell (in vitro) and extracted soleus muscle (ex vivo) models. To create an in vitro model, insulin resistance was established utilizing a high insulin–glucose approach in differentiated L6 muscle cells from Rattus norvegicus. Additionally, for the ex vivo model, extracted soleus muscles, adult Sprague-Dawley rats were subjected to a solution containing 25 mmol L−1 glucose and 100 mmol L−1 insulin for 24 hours to induce insulin resistance. After insulin resistance, compounds under investigation and standard medicines (metformin and glimepiride) were tested. The differential expression of PI3K, IRS-1, PKC, AKT2, and GLUT4 genes involved in the insulin signaling pathway was evaluated using qPCR. The evaluated glycosylated sulfonylurea analogues exhibited a significant increase in the gene expression of insulin-dependent pathways both in vitro and ex vivo, confirming the rejuvenation of the impaired insulin signaling pathway genes. Altogether, glycosylated sulfonylurea analogues described in this study represent potential therapeutic anti-diabetic drugs.

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来源期刊
MedChemComm
MedChemComm BIOCHEMISTRY & MOLECULAR BIOLOGY-CHEMISTRY, MEDICINAL
CiteScore
4.70
自引率
0.00%
发文量
0
审稿时长
2.2 months
期刊介绍: Research and review articles in medicinal chemistry and related drug discovery science; the official journal of the European Federation for Medicinal Chemistry. In 2020, MedChemComm will change its name to RSC Medicinal Chemistry. Issue 12, 2019 will be the last issue as MedChemComm.
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