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卡帕醌通过调节 IR/IRS1/PI3k/Akt/GSK3/FoxO1 通路改善 HepG2 细胞胰岛素抵抗。

Carpachromene Ameliorates Insulin Resistance in HepG2 Cells via Modulating IR/IRS1/PI3k/Akt/GSK3/FoxO1 Pathway.

机构信息

Department of Biochemistry, Faculty of Pharmacy, Deraya University, Minia 61111, Egypt.

Department of Pharmacognosy, Faculty of Pharmacy, South Valley University, Qena 83523, Egypt.

出版信息

Molecules. 2021 Dec 16;26(24):7629. doi: 10.3390/molecules26247629.

Abstract

Insulin resistance contributes to several disorders including type 2 diabetes and cardiovascular diseases. Carpachromene is a natural active compound that inhibits α-glucosidase enzyme. The aim of the present study is to investigate the potential activity of carpachromene on glucose consumption, metabolism and insulin signalling in a HepG2 cells insulin resistant model. A HepG2 insulin resistant cell model (HepG2/IRM) was established. Cell viability assay of HepG2/IRM cells was performed after carpachromene/metformin treatment. Glucose concentration and glycogen content were determined. Western blot analysis of insulin receptor, IRS1, IRS2, PI3k, Akt, GSK3, FoxO1 proteins after carpachromene treatment was performed. Phosphoenolpyruvate carboxykinase (PEPCK) and hexokinase (HK) enzymes activity was also estimated. Viability of HepG2/IRM cells was over 90% after carpachromene treatment at concentrations 6.3, 10, and 20 µg/mL. Treatment of HepG2/IRM cells with carpachromene decreased glucose concentration in a concentration- and time-dependant manner. In addition, carpachromene increased glycogen content of HepG2/IRM cells. Moreover, carpachromene treatment of HepG2/IRM cells significantly increased the expression of phosphorylated/total ratios of IR, IRS1, PI3K, Akt, GSK3, and FoxO1 proteins. Furthermore, PEPCK enzyme activity was significantly decreased, and HK enzyme activity was significantly increased after carpachromene treatment. The present study examined, for the first time, the potential antidiabetic activity of carpachromene on a biochemical and molecular basis. It increased the expression ratio of insulin receptor and IRS1 which further phosphorylated/activated PI3K/Akt pathway and phosphorylated/inhibited GSK3 and FoxO1 proteins. Our findings revealed that carpachromene showed central molecular regulation of glucose metabolism and insulin signalling via IR/IRS1/ PI3K/Akt/GSK3/FoxO1 pathway.

摘要

胰岛素抵抗可导致多种疾病,包括 2 型糖尿病和心血管疾病。姜黄素是一种天然活性化合物,可抑制α-葡萄糖苷酶。本研究旨在探讨姜黄素在 HepG2 细胞胰岛素抵抗模型中对葡萄糖消耗、代谢和胰岛素信号的潜在作用。建立 HepG2 胰岛素抵抗细胞模型(HepG2/IRM)。用姜黄素/二甲双胍处理 HepG2/IRM 细胞后,进行细胞活力测定。测定葡萄糖浓度和糖原含量。用姜黄素处理后,进行胰岛素受体、IRS1、IRS2、PI3k、Akt、GSK3、FoxO1 蛋白的 Western blot 分析。还估计了磷酸烯醇丙酮酸羧激酶(PEPCK)和己糖激酶(HK)酶的活性。姜黄素处理浓度为 6.3、10 和 20 μg/mL 时,HepG2/IRM 细胞的活力超过 90%。姜黄素以浓度和时间依赖的方式降低 HepG2/IRM 细胞的葡萄糖浓度。此外,姜黄素增加 HepG2/IRM 细胞的糖原含量。此外,姜黄素处理 HepG2/IRM 细胞显著增加 IR、IRS1、PI3K、Akt、GSK3 和 FoxO1 蛋白的磷酸化/总比。此外,PEPCK 酶活性显著降低,HK 酶活性显著增加。本研究首次从生化和分子基础上研究了姜黄素对糖尿病的潜在治疗作用。它增加了胰岛素受体和 IRS1 的表达比例,进一步磷酸化/激活了 PI3K/Akt 通路,并磷酸化/抑制了 GSK3 和 FoxO1 蛋白。我们的研究结果表明,姜黄素通过 IR/IRS1/PI3K/Akt/GSK3/FoxO1 通路对葡萄糖代谢和胰岛素信号表现出中枢分子调节作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9f4c/8708443/89a96a7aa4ee/molecules-26-07629-g001.jpg

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