Metformin Suppresses Lipopolysaccharide (LPS)-induced Inflammatory Response in Murine Macrophages via Activating Transcription Factor-3 (ATF-3) Induction

被引:174
作者
Kim, Juyoung [1 ]
Kwak, Hyun Jeong [1 ]
Cha, Ji-Young [2 ]
Jeong, Yun-Seung [2 ]
Rhee, Sang Dahl [3 ]
Kim, Kwang Rok [3 ]
Cheon, Hyae Gyeong [1 ,4 ]
机构
[1] Gachon Univ, Lee Gil Ya Canc & Diabet Inst, Dept Pharmacol & Pharmaceut Sci, Inchon 406799, South Korea
[2] Gachon Univ, Lee Gil Ya Canc & Diabet Inst, Dept Mol Med, Inchon 406799, South Korea
[3] Korea Res Inst Chem Technol, Bioorgan Sci Div, Taejon 305343, South Korea
[4] Gil Med Ctr, Gachon Med Res Inst, Inchon 405760, South Korea
基金
新加坡国家研究基金会;
关键词
NITRIC-OXIDE SYNTHASE; VASCULAR ENDOTHELIAL-CELLS; FACTOR-KAPPA-B; PROTEIN-KINASE; 5-AMINOIMIDAZOLE-4-CARBOXAMIDE RIBOSIDE; NEGATIVE REGULATOR; DIABETES-MELLITUS; RESPIRATORY-CHAIN; GENE-EXPRESSION; MECHANISM;
D O I
10.1074/jbc.M114.577908
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Metformin, a well known antidiabetic agent that improves peripheral insulin sensitivity, also elicits anti-inflammatory actions, but its mechanism is unclear. Here, we investigated the mechanism responsible for the anti-inflammatory effect of metformin action in lipopolysaccharide (LPS)-stimulated murine macrophages. Metformin inhibited LPS-induced production of tumor necrosis factor-alpha (TNF-alpha) and interleukin- 6 (IL-6) in a concentration-dependent manner and in parallel induction of activating transcription factor-3 (ATF3), a transcription factor and member of the cAMP-responsive element-binding protein family. ATF-3 knockdown abolished the inhibitory effects of metformin on LPS-induced proinflammatory cytokine production accompanied with reversal of metformin-induced suppression of mitogen-activated protein kinase (MAPK) phosphorylation. Conversely, AMP-activated protein kinase (AMPK) phosphorylation and NF-kappa B suppression by metformin were unaffected by ATF-3 knockdown. ChIP-PCR analysis revealed that LPS-induced NF-kappa B enrichments on the promoters of IL-6 and TNF-alpha were replaced by ATF-3 upon metformin treatment. AMPK knockdown blunted all the effects of metformin (ATF-3 induction, proinflammatory cytokine inhibition, and MAPK inactivation), suggesting that AMPK activation by metformin is required for and precedes ATF-3 induction. Oral administration of metformin to either mice with LPS-induced endotoxemia or ob/ob mice lowered the plasma and tissue levels of TNF-alpha and IL-6 and increased ATF-3 expression in spleen and lungs. These results suggest that metformin exhibits anti-inflammatory action in macrophages at least in part via pathways involving AMPK activation and ATF-3 induction.
引用
收藏
页码:23246 / 23255
页数:10
相关论文
共 37 条
[11]   Activating transcription factor 3 is a negative regulator of allergic pulmonary inflammation [J].
Gilchrist, Mark ;
Henderson, William R., Jr. ;
Clark, April E. ;
Simmons, Randi M. ;
Ye, Xin ;
Smith, Kelly D. ;
Aderem, Alan .
JOURNAL OF EXPERIMENTAL MEDICINE, 2008, 205 (10) :2349-2357
[12]  
Hai T, 1999, GENE EXPRESSION, V7, P321
[13]   An alternatively spliced isoform of transcriptional repressor ATF3 and its induction by stress stimuli [J].
Hashimoto, Y ;
Zhang, C ;
Kawauchi, J ;
Imoto, I ;
Adachi, MT ;
Inazawa, J ;
Amagasa, T ;
Hai, T ;
Kitajima, S .
NUCLEIC ACIDS RESEARCH, 2002, 30 (11) :2398-2406
[14]   Metformin inhibits cytokine-induced nuclear factor κB activation via AMP-activated protein kinase activation in vascular endothelial cells [J].
Hattori, Yoshiyuki ;
Suzuki, Kunihiro ;
Hattori, Sachiko ;
Kasai, Kikuo .
HYPERTENSION, 2006, 47 (06) :1183-1188
[15]   Lipopolysaccharide-induced expression of matrix metalloproteinases in human monocytes is suppressed by IFN-γ via superinduction of ATF-3 and suppression of AP-1 [J].
Ho, Hao H. ;
Antoniv, Taras T. ;
Ji, Jong-Dae ;
Ivashkiv, Lionel B. .
JOURNAL OF IMMUNOLOGY, 2008, 181 (07) :5089-5097
[16]   A splice variant of stress response gene ATF3 counteracts NF-κB-dependent anti-apoptosis through inhibiting recruitment of CREB-binding protein/p300 coactivator [J].
Hua, B ;
Tamamori-Adachi, M ;
Luo, Y ;
Tamura, K ;
Morioka, M ;
Fukuda, M ;
Tanaka, Y ;
Kitajima, S .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2006, 281 (03) :1620-1629
[17]   Metformin inhibits TNF-α-induced IκB kinase phosphorylation, IκB-α degradation and IL-6 production in endothelial cells through PI3K-dependent AMPK phosphorylation [J].
Huang, Nan-Lan ;
Chiang, Shu-Hui ;
Hsueh, Chia-Hsiang ;
Liang, Yao-Jen ;
Chen, Yi-Jung ;
Lai, Ling-Ping .
INTERNATIONAL JOURNAL OF CARDIOLOGY, 2009, 134 (02) :169-175
[18]   CELLULAR MECHANISM OF METFORMIN ACTION INVOLVES GLUCOSE TRANSPORTER TRANSLOCATION FROM AN INTRACELLULAR POOL TO THE PLASMA-MEMBRANE IN L6 MUSCLE-CELLS [J].
HUNDAL, HS ;
RAMLAL, T ;
REYES, R ;
LEITER, LA ;
KLIP, A .
ENDOCRINOLOGY, 1992, 131 (03) :1165-1173
[19]   Mechanism by which metformin reduces glucose production in type 2 diabetes [J].
Hundal, RS ;
Krssak, M ;
Dufour, S ;
Laurent, D ;
Lebon, V ;
Chandramouli, V ;
Inzucchi, SE ;
Schumann, WC ;
Petersen, KF ;
Landau, BR ;
Shulman, GI .
DIABETES, 2000, 49 (12) :2063-2069
[20]   Metformin inhibits proinflammatory responses and nuclear factor-κB in human vascular wall cells [J].
Isoda, K ;
Young, JL ;
Zirlik, A ;
MacFarlane, LA ;
Tsuboi, N ;
Gerdes, N ;
Schönbeck, U ;
Libby, P .
ARTERIOSCLEROSIS THROMBOSIS AND VASCULAR BIOLOGY, 2006, 26 (03) :611-617