» Articles » PMID: 18086672

Interleukin-18 Suppresses Adiponectin Expression in 3T3-L1 Adipocytes Via a Novel Signal Transduction Pathway Involving ERK1/2-dependent NFATc4 Phosphorylation

Overview
Journal J Biol Chem
Specialty Biochemistry
Date 2007 Dec 19
PMID 18086672
Citations 14
Authors
Affiliations
Soon will be listed here.
Abstract

An inverse correlation between the pro-inflammatory cytokine interleukin-18 and the anti-atherogenic adipokine adiponectin has been reported in the chronic pathological conditions obesity, insulin resistance, coronary artery disease, and metabolic syndrome. We investigated whether this relationship is coincidental or has a causal basis. Here we show that interleukin-18 (IL-18) suppresses adiponectin transcription, mRNA expression, and secretion by 3T3-L1 adipocytes. IL-18 suppresses adiponectin promoter-reporter activity, an effect reversed by deletion or mutation of the NFATc4 core DNA-binding site. IL-18 induces NFATc4 phosphorylation (Ser(676)), nuclear translocation, and in vivo DNA binding. IL-18 induces ERK1/2 phosphorylation and enzyme activity, and pretreatment with the MEK inhibitor U0126, ERK1/2 inhibitor PD98059, or small interference RNA targeted to ERK1/2 attenuates ERK1/2 activation and NFATc4 phosphorylation. Finally, inhibition of ERK1/2 or NFATc4 knockdown reverses IL-18-mediated adiponectin suppression. In contrast to its inhibitory effects on adiponectin expression, IL-18 potently stimulates PAI-1 secretion. These data demonstrate for the first time that IL-18 selectively suppresses adiponectin expression via ERK1/2-dependent NFATc4 activation and suggest that the inverse relationship observed between IL-18 and adiponectin in various chronic pathological conditions is causally related. Thus, targeting IL-18 expression may enhance adiponectin expression and mitigate disease progression.

Citing Articles

Adiponectin, Interleukin-18 (IL-18), and Visceral Adipose Tissue in Filipino Americans: Biomarkers and Risk of Type 2 Diabetes.

Gallegos J, Taylor-Piliae R, Pace T, Gallek M, Ritter L SAGE Open Nurs. 2024; 10:23779608241272513.

PMID: 39139192 PMC: 11320395. DOI: 10.1177/23779608241272513.


Translational control of murine adiponectin expression by an upstream open reading frame element.

Vasu K, Ramachandiran I, Chechi A, Khan K, Khan D, Kaufman R RNA Biol. 2023; 20(1):737-749.

PMID: 37702393 PMC: 10501164. DOI: 10.1080/15476286.2023.2256094.


Differential IL18 signaling via IL18 receptor and Na-Cl co-transporter discriminating thermogenesis and glucose metabolism regulation.

Zhang X, Luo S, Wang M, Cao Q, Zhang Z, Huang Q Nat Commun. 2022; 13(1):7582.

PMID: 36482059 PMC: 9732325. DOI: 10.1038/s41467-022-35256-8.


Interleukin-18 cytokine in immunity, inflammation, and autoimmunity: Biological role in induction, regulation, and treatment.

Ihim S, Abubakar S, Zian Z, Sasaki T, Saffarioun M, Maleknia S Front Immunol. 2022; 13:919973.

PMID: 36032110 PMC: 9410767. DOI: 10.3389/fimmu.2022.919973.


The Effects of Adoptively Transferred IL-23/IL-18-Polarized Neutrophils on Tumor and Collagen-Induced Arthritis in Mice.

Chen Y, Li Y, Guo H, Zhang Z, Zhang J, Dong X J Inflamm Res. 2021; 14:4669-4686.

PMID: 34557012 PMC: 8453247. DOI: 10.2147/JIR.S329528.