Atorvastatin and pitavastatin enhance lipoprotein lipase production in L6 skeletal muscle cells through activation of adenosine monophosphate-activated protein kinase

被引:25
|
作者
Ohira, Masahiro [3 ]
Endo, Kei [3 ]
Saiki, Atsuhito [3 ]
Miyashita, Yoh [3 ]
Terai, Kensuke [1 ]
Murano, Takeyoshi [2 ]
Watanabe, Fusako [2 ]
Tatsuno, Ichiro [3 ]
Shirai, Kohji [3 ]
机构
[1] Toho Univ, Med Ctr, Sakura Hosp, Dept Pathol, Sakura, Chiba 2850841, Japan
[2] Toho Univ, Med Ctr, Sakura Hosp, Dept Clin Lab, Sakura, Chiba 2850841, Japan
[3] Toho Univ, Med Ctr, Sakura Hosp, Ctr Diabet Metab & Endocrinol, Sakura, Chiba 2850841, Japan
来源
METABOLISM-CLINICAL AND EXPERIMENTAL | 2012年 / 61卷 / 10期
关键词
LOW-DENSITY-LIPOPROTEIN; REDUCTASE INHIBITOR; DOUBLE-BLIND; SIMVASTATIN; AMPK; PHOSPHORYLATION; TRIGLYCERIDE; COENZYME; CHOLESTEROL; PRAVASTATIN;
D O I
10.1016/j.metabol.2012.03.010
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
Pravastatin and atorvastatin increase the serum level of lipoprotein lipase (LPL) mass in vivo but do not increase LPL activity in 3 T3-L1 preadipocytes in vitro. LPL is mainly produced by adipose tissue and skeletal muscle cells. Metformin enhances LPL in skeletal muscle through adenosine monophosphate-activated protein kinase (AMPK) activation but not in adipocytes. This study aimed to examine the effect of 3-hydroxy-3-methylglutaryl coenzyme A (HMG-CoA) reductase inhibitors (statins) on LPL production and to investigate the mechanism by which statins enhance skeletal muscle cell LPL production. L6 skeletal muscle cells were incubated with pravastatin, simvastatin, atorvastatin or pitavastatin. LPL activity, protein levels and mRNA expression were measured. Atorvastatin and pitavastatin significantly increased LPL activity, protein levels and mRNA expression in L6 skeletal muscle cells at 1 mu mol/L, but neither statin had an effect at 10 mu mol/L. We measured AMPK to clarify the mechanism by which statins increase LPL production in skeletal muscle cells. At 1 mu mol/L, both atorvastatin and pitavastatin enhanced AMPK activity, but this enhancement was abolished when AMPK signaling was blocked by compound C. The increased expressions of LPL protein and mRNA by atorvastatin and pitavastatin were reduced by compound C. In addition, mevalonic acid abolished atorvastatin- and pitavastatin-induced AMPK activation and LPL expression. These results suggest that atorvastatin and pitavastatin increase LPL activity, protein levels and LPL mRNA expression by activating AMPK in skeletal muscle cells. (C) 2012 Elsevier Inc. All rights reserved.
引用
收藏
页码:1452 / 1460
页数:9
相关论文
共 50 条
  • [31] Hyaluronan Synthesis Is Inhibited by Adenosine Monophosphate-activated Protein Kinase through the Regulation of HAS2 Activity in Human Aortic Smooth Muscle Cells
    Vigetti, Davide
    Clerici, Moira
    Deleonibus, Sara
    Karousou, Evgenia
    Viola, Manuela
    Moretto, Paola
    Heldin, Paraskevi
    Hascall, Vincent C.
    De Luca, Giancarlo
    Passi, Alberto
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2011, 286 (10) : 7917 - 7924
  • [32] Effect of Dietary Nonstructural Carbohydrate Content on Activation of 50-Adenosine Monophosphate-Activated Protein Kinase in Liver, Skeletal Muscle, and Digital Laminae of Lean and Obese Ponies
    Burns, T. A.
    Watts, M. R.
    Weber, P. S.
    McCutcheon, L. J.
    Geor, R. J.
    Belknap, J. K.
    JOURNAL OF VETERINARY INTERNAL MEDICINE, 2014, 28 (04) : 1280 - 1288
  • [33] ShRNA-mediated gene silencing of lipoprotein lipase improves insulin sensitivity in L6 skeletal muscle cells
    Jan, Majib
    Medh, Jheem D.
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2015, 462 (01) : 33 - 37
  • [34] Evidence for organic cation transporter-mediated metformin transport and 5′-adenosine monophosphate-activated protein kinase activation in rat skeletal muscles
    Oshima, Rieko
    Yamada, Mayumi
    Kurogi, Eriko
    Ogino, Yohei
    Serizawa, Yasuhiro
    Tsuda, Satoshi
    Ma, Xiao
    Egawa, Tatsuro
    Hayashi, Tatsuya
    METABOLISM-CLINICAL AND EXPERIMENTAL, 2015, 64 (02): : 296 - 304
  • [35] Effects of ginsenoside Rb1 on skeletal muscle insulin resistance and adenosine monophosphate-activated protein kinase signaling pathway in obese mice
    Zhao, Dan-Dan
    Bai, Ying
    Wu, Rui
    Mo, Fang-Fang
    Liu, Chen-Yue
    Zhu, Ru-Yuan
    Jiang, Guang-Jian
    Liu, Jia-Xian
    Zhang, Dong-Wei
    Gao, Si-Hua
    WORLD JOURNAL OF TRADITIONAL CHINESE MEDICINE, 2019, 5 (01) : 42 - 49
  • [36] Activation of 5′ Adenosine Monophosphate-Activated Protein Kinase Blocks Cumulus Cell Expansion Through Inhibition of Protein Synthesis During In Vitro Maturation in Swine
    Santiquet, Nicolas
    Sasseville, Maxime
    Laforest, Martin
    Guillemette, Christine
    Gilchrist, Robert B.
    Richard, Francois J.
    BIOLOGY OF REPRODUCTION, 2014, 91 (02)
  • [37] Extracellular Superoxide Dismutase Attenuates Hepatic Oxidative Stress in Nonalcoholic Fatty Liver Disease through the Adenosine Monophosphate-Activated Protein Kinase Activation
    Nam, Heechul
    Lim, Ji Hee
    Kim, Tae Woo
    Kim, Eun Nim
    Oum, Sae-Jong
    Bae, Si Hyun
    Park, Cheol Whee
    ANTIOXIDANTS, 2023, 12 (12)
  • [38] Ablation of adenosine monophosphate-activated protein kinase α1 in vascular smooth muscle cells promotes diet-induced atherosclerotic calcification in vivo
    CAI Zhejun
    DING Ye
    ZHANG Miao
    LU Qiulun
    WU Shengnan
    ZHU Huaiping
    SONG Ping
    ZOU Minghui
    中国病理生理杂志, 2016, 32 (08) : 1493 - 1494
  • [39] Licorice extract suppresses adipogenesis through regulation of mitotic clonal expansion and adenosine monophosphate-activated protein kinase in 3T3-L1 cells
    Lee, Mun-Hoe
    Kim, Hyeong-Min
    Chung, Hee-Chul
    Lee, Jin-Hee
    JOURNAL OF FOOD BIOCHEMISTRY, 2020, 44 (12)
  • [40] Capmatinib attenuates lipogenesis in 3T3-L1 adipocytes through an adenosine monophosphate-activated protein kinase-dependent pathway
    Ahn, Sung Ho
    Lee, Hyun Jung
    Pyun, Do Hyeon
    Kim, Tae Jin
    Abd El-Aty, A. M.
    Song, Jin-Ho
    Shin, Yong Kyoo
    Jeong, Ji Hoon
    Park, Eon Sub
    Jung, Tae Woo
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2021, 553 : 30 - 36