Astragaloside IV inhibits protein tyrosine phosphatase 1B and improves insulin resistance in insulin-resistant HepG2 cells and triglyceride accumulation in oleic acid (OA)-treated HepG2 cells

被引:37
|
作者
Zhou, Xiao [1 ]
Wang, Lin Lin [1 ]
Tang, Wen Jing [1 ]
Tang, Biao [1 ]
机构
[1] Hunan Univ Chinese Med, Med Sch, 300 Xueshi Rd, Changsha 410208, Hunan, Peoples R China
关键词
Protein tyrosine phosphatase 1B (PTP1B); Astragaloside IV (AST IV); Insulin resistance; Lipid metabolism; TRADITIONAL CHINESE MEDICINE; PTP1B INHIBITOR; OBESITY;
D O I
10.1016/j.jep.2020.113556
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Ethnopharmacological relevance: Astragaloside IV (AST IV) is the active component of Astragalus membranaceus (Fisch.) Bunge, which regulates lipid and carbohydrate metabolism and improves insulin resistance. In this study, we investigated the effects of AST IV on insulin resistant cells and a non-alcoholic fatty liver disease (NAFLD) model induced by high-concentration insulin or oleic acid (OA) in HepG2 cells, as well as the associated regulatory markers. Methods: First, the target of AST IV was predicted via pharmacophore model matching and molecular docking. Then, enzyme kinetics experiments were conducted in vitro to determine the effect of AST IV on the target protein. Next, AST IV's toxicity was tested on HepG2 cells in vitro, through an insulin resistance model and an NAFLD model, by high-concentration insulin or OA, respectively. To explore the effects of AST IV on insulin resistance and lipid metabolism, we detected the related indexes of glucose and lipid metabolism through commercially available kits. Relevant proteins were also detected by Western blot to provide future direction for study. Results: Our preliminary results of pharmacophore model matching and molecular docking suggested that AST IV and protein tyrosine phosphatase 1B (PTP1B) can be well-combined through hydrogen bonding. Further, the enzyme kinetics experiment showed that AST IV was an effective and specific inhibitor to PTP1B. We found that the protein level of PTP1B in HepG2 cells was significantly increased after treating with high-concentration insulin or OA. Additionally, the intervention of AST IV significantly increased glucose consumption in an insulin resistance model and reduced the content of triglyceride (TG), total cholesterol (TC), and free fatty acid (FFA) in the NAFLD model. Moreover, the 2-N-(7-nitrobenze-2-oxa-1, 3 diazol-4-yl) (2-NBDG) uptake rate in the NAFLD model was also greatly improved. These results validated the effects of AST IV on improving insulin resistance and lipid accumulation. Furthermore, Western blot results illustrated that AST IV suppressed PTP1B and increased levels of phosphorylated insulin receptor (p-IR) and phosphorylated insulin receptor substrate-1 (p-IRS-1) in insulin-resistant HepG2 cells, while also decreasing protein levels of PTP1B and sterol element regulatory binding protein-1c (SREBP-1c) in the NAFLD model. Conclusion: This study demonstrated that AST IV inhibited PTP1B and effectively improved insulin resistance in insulin-resistant HepG2 cells and triglyceride accumulation in OA-treated HepG2 cells.
引用
收藏
页数:8
相关论文
共 50 条
  • [1] Astragaloside IV Inhibits Triglyceride Accumulation in Insulin-Resistant HepG2 Cells via AMPK-Induced SREBP-1c Phosphorylation
    Wang, Chunyi
    Li, Yan
    Hao, Mengjiao
    Li, Weimin
    FRONTIERS IN PHARMACOLOGY, 2018, 9
  • [2] Oligonol promotes glucose uptake by modulating the insulin signaling pathway in insulin-resistant HepG2 cells via inhibiting protein tyrosine phosphatase 1B
    Himanshu Kumar Bhakta
    Pradeep Paudel
    Hajime Fujii
    Atsuya Sato
    Chan Hum Park
    Takako Yokozawa
    Hyun Ah Jung
    Jae Sue Choi
    Archives of Pharmacal Research, 2017, 40 : 1314 - 1327
  • [3] Oligonol promotes glucose uptake by modulating the insulin signaling pathway in insulin-resistant HepG2 cells via inhibiting protein tyrosine phosphatase 1B
    Bhakta, Himanshu Kumar
    Paudel, Pradeep
    Fujii, Hajime
    Sato, Atsuya
    Park, Chan Hum
    Yokozawa, Takako
    Jung, Hyun Ah
    Choi, Jae Sue
    ARCHIVES OF PHARMACAL RESEARCH, 2017, 40 (11) : 1314 - 1327
  • [4] Water Extract of Mungbean (Vigna radiata L.) Inhibits Protein Tyrosine Phosphatase-1B in Insulin-Resistant HepG2 Cells
    Saeting, Orathai
    Chandarajoti, Kasemsiri
    Phongphisutthinan, Angsuma
    Hongsprabhas, Parichat
    Sae-tan, Sudathip
    MOLECULES, 2021, 26 (05):
  • [5] Prunin is a highly potent flavonoid from Prunus davidiana stems that inhibits protein tyrosine phosphatase 1B and stimulates glucose uptake in insulin-resistant HepG2 cells
    Hyun Ah Jung
    Md. Yousof Ali
    Himanshu Kumar Bhakta
    Byung-Sun Min
    Jae Sue Choi
    Archives of Pharmacal Research, 2017, 40 : 37 - 48
  • [6] HM-chromanone from Portulaca oleracea L. inhibits protein tyrosine phosphatase 1B and mitigates glucose production in insulin-resistant HepG2 cells
    Lim, Ha Jeong
    Park, Jae Eun
    Han, Ji Sook
    FITOTERAPIA, 2023, 167
  • [7] Prunin is a highly potent flavonoid from Prunus davidiana stems that inhibits protein tyrosine phosphatase 1B and stimulates glucose uptake in insulin-resistant HepG2 cells
    Jung, Hyun Ah
    Ali, Md. Yousof
    Bhakta, Himanshu Kumar
    Min, Byung-Sun
    Choi, Jae Sue
    ARCHIVES OF PHARMACAL RESEARCH, 2017, 40 (01) : 37 - 48
  • [8] Effects of Phycocyanin on Glucose Metabolism in Insulin-Resistant HepG2 Cells
    Li F.
    Zhang W.
    Hao S.
    Yang Q.
    Li Q.
    Liu Y.
    Journal of Food Science and Technology (China), 2023, 41 (03): : 54 - 63+84
  • [9] Baicalein improves glucose metabolism in insulin resistant HepG2 cells
    Yang, Zongchun
    Huang, Wei
    Zhang, Jingsheng
    Xie, Ming
    Wang, Xiaowan
    EUROPEAN JOURNAL OF PHARMACOLOGY, 2019, 854 : 187 - 193
  • [10] Amelioration of Insulin Resistance by Scopoletin in High-Glucose-Induced, Insulin-Resistant HepG2 Cells
    Zhang, W. Y.
    Lee, J. -J.
    Kim, Y.
    Kim, I. -S.
    Park, J. -S.
    Myung, C. -S.
    HORMONE AND METABOLIC RESEARCH, 2010, 42 (13) : 930 - 935