大麻在动物模型中显示出抗肝细胞癌的潜力:关于 Akt 参与的硅学和体内研究。

Dorcas I Akinloye, Damilohun S Metibemu, Mujidat T Shittu, Mariam A Lawal, Faith O Olatunji, Muideen A Oyediran, Oluseyi A Akinloye
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引用次数: 0

摘要

背景:靶向蛋白激酶 B(Akt)及其下游信号蛋白是设计新型高效抗肝细胞癌(HCC)候选药物的可行方案。本研究通过使用硅学和 HCC 体内动物模型方法,通过 Akt 的参与探索大麻(C. sativa)提取物的抗 HCC 潜力:方法:通过气相色谱-质谱联用技术(GCSM)获得的大麻提取物的植物成分与 Akt-2 的催化结构域对接。用荠菜提取物处理二乙基亚硝胺(DEN)HCC模型。结果:荠菜提取物的主要植物成分Δ-9-四氢大麻酚(Δ-9-THC)和大麻二酚在Akt-2的催化结构域内形成稳定的疏水和氢键相互作用。与阳性对照组(第 2 组)相比,大麻酚提取物(15 毫克/千克和 30 毫克/千克)可使肝功能酶的活性降低 3 倍。与阳性对照组(第 2 组)相比,荠菜提取物还能使接受 HCC 治疗的 Wistar 大鼠的肝脏脂质过氧化反应降低 1.5 倍,血清抗氧化酶活性提高 1 倍。在肝细胞癌动物模型中,荠菜提取物可显著下调第 3、4 和 5 组的 Akt 和 HIF mRNA,与第 2 组相比,分别下降了 2、1.5 和 2.5 倍。与第 2 组相比,第 3、4 和 5 组的 VEGF mRNA 下调了 1.5 倍;与第 2 组相比,第 3、4 和 5 组的 XIAP mRNA 表达分别下调了 1.5、2 和 1.25 倍。 与第 2 组相比,第 3-5 组的 COX-2 mRNA 水平分别下调了 1.5、1 和 1 倍。与第 2 组相比,第 3-5 组的 CRP mRNA 下调了 2 倍。与第 2 组相比,第 3-5 组的 p21 mRNA 分别上调了 2、2.5 和 3 倍。组织学分析表明,荠菜提取物可减少 HCC 的坏死和炎症:结论:在 HCC 动物模型中,荠菜具有抗肝细胞癌的潜力,Akt 参与其中。其抗癌潜力是通过抗血管生成、促凋亡、周期停滞和抗炎机制介导的。在今后的研究中,应探讨Δ-9-四氢大麻酚(Δ-9- THC)和大麻二酚通过 PI3K-Akt 信号通路发挥抗 HCC 作用的机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Cannabis sativa demonstrates anti-hepatocellular carcinoma potentials in animal model: in silico and in vivo studies of the involvement of Akt.

Cannabis sativa demonstrates anti-hepatocellular carcinoma potentials in animal model: in silico and in vivo studies of the involvement of Akt.

Cannabis sativa demonstrates anti-hepatocellular carcinoma potentials in animal model: in silico and in vivo studies of the involvement of Akt.

Cannabis sativa demonstrates anti-hepatocellular carcinoma potentials in animal model: in silico and in vivo studies of the involvement of Akt.

Background: Targeting protein kinase B (Akt) and its downstream signaling proteins are promising options in designing novel and potent drug candidates against hepatocellular carcinoma (HCC). The present study explores the anti-HCC potentials of Cannabis sativa (C. sativa) extract via the involvement of Akt using both in silico and in vivo animal models of HCC approaches.

Methods: Phytoconstituents of C. sativa extract obtained from Gas Chromatography Mass-spectrometry (GCSM) were docked into the catalytic domain of Akt-2. The Diethylnitrosamine (DEN) model of HCC was treated with C. sativa extract. The effects of C. sativa extract treatments on DEN model of hepatocellular carcinoma were assessed by One-way analysis of variance (ANOVA) of the treated and untreated groups RESULT: The lead phytoconstituents of C. sativa extract, Δ-9-tetrahydrocannabinol (Δ-9-THC) and cannabidiol form stable hydrophobic and hydrogen bond interactions within the catalytic domain of Akt-2. C. sativa extract (15 mg/kg and 30 mg/kg) respectively gives a 3-fold decrease in the activities of liver function enzymes when compared with the positive control (group 2). It also gives a 1.5-fold decrease in hepatic lipid peroxidation and elevates serum antioxidant enzymes' activities by 1-fold in HCC treated Wistar rats when compared with the positive control (group 2). In an animal model of hepatocellular carcinoma, C. sativa extract significantly downregulated Akt and HIF mRNAs in groups 3, 4, and 5 with 2, 1.5, 2.5-fold decrease relative to group 2. VEGF mRNA was downregulated by 1.5-fold decrease in groups 3-5 when compared to group 2. The expression of XIAP mRNA was downregulated by 1.5, 2, and 1.25-folds in groups 3, 4, and 5 respectively, in comparison with group 2. In comparison to group 2, COX-2 mRNA levels were downregulated by 1.5, 1, and 1-folds in groups 3-5. In groups 3-5, CRP mRNA was downregulated by 2-fold in comparison with group 2. In groups 3-5, p21 mRNA was upregulated by 2, 2.5, and 3-folds, respectively when compared with group 2. It upregulated p53 mRNA by 2.5, 3.5, and 2.5-folds in groups 3-5 in comparison with group 2. It downregulated AFP mRNA by 3.5, 2.5, .2.5-folds in groups 3, 4, and 5 respectively when compared with group 2. Histologic analysis showed that C. sativa extract reduced necrosis and inflammation in HCC.

Conclusion: C. sativa demonstrates anti-hepatocellular carcinoma potentials in an animal model of HCC and with the involvement of Akt. Its anticancer potential is mediated through antiangiogenic, proapoptotic, cycle arrest, and anti-inflammatory mechanisms. In future studies, the mechanisms of anti-HCC effects of Δ-9-tetrahydrocannabinol (Δ-9- THC) and cannabidiol via the PI3K-Akt signaling pathways should be explored.

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