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Citations to this article

Liver X receptor α mediates hepatic triglyceride accumulation through upregulation of G0/G1 Switch Gene 2 expression
Bradlee L. Heckmann, … , Rudolf Zechner, Jun Liu
Bradlee L. Heckmann, … , Rudolf Zechner, Jun Liu
Published February 23, 2017
Citation Information: JCI Insight. 2017;2(4):e88735. https://doi.org/10.1172/jci.insight.88735.
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Research Article Hepatology Metabolism

Liver X receptor α mediates hepatic triglyceride accumulation through upregulation of G0/G1 Switch Gene 2 expression

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Abstract

Liver X receptors (LXRs) are transcription factors essential for cholesterol homeostasis and lipogenesis. LXRα has been implicated in regulating hepatic triglyceride (TG) accumulation upon both influx of adipose-derived fatty acids (FAs) during fasting and stimulation of de novo FA synthesis by chemical agonism of LXR. However, whether or not a convergent mechanism is employed to drive deposition of FAs from these 2 different sources in TGs is undetermined. Here, we report that the G0/G1 Switch Gene 2 (G0S2), a selective inhibitor of intracellular TG hydrolysis/lipolysis, is a direct target gene of LXRα. Transcriptional activation is conferred by LXRα binding to a direct repeat 4 (DR4) motif in the G0S2 promoter. While LXRα–/– mice exhibited decreased hepatic G0S2 expression, adenoviral expression of G0S2 was sufficient to restore fasting-induced TG storage and glycogen depletion in the liver of these mice. In response to LXR agonist T0901317, G0S2 ablation prevented hepatic steatosis and hypertriglyceridemia without affecting the beneficial effects on HDL. Thus, the LXRα-G0S2 axis plays a distinct role in regulating hepatic TG during both fasting and pharmacological activation of LXR.

Authors

Bradlee L. Heckmann, Xiaodong Zhang, Alicia M. Saarinen, Gabriele Schoiswohl, Erin E. Kershaw, Rudolf Zechner, Jun Liu

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Citations: 1 4 3 3 2 3 2 2 20
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Impact of Exposure to a Mixture of Organophosphate Esters on Adrenal Cell Phenotype, Lipidome, and Function.
Li Z, Hales BF, Robaire B
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PNPLA3 is a triglyceride lipase that mobilizes polyunsaturated fatty acids to facilitate hepatic secretion of large-sized very low-density lipoprotein
Johnson SM, Bao H, McMahon CE, Chen Y, Burr SD, Anderson AM, Madeyski-Bengtson K, Lindén D, Han X, Liu J
Nature Communications 2024
LXR-dependent enhancer activation regulates the temporal organization of the liver’s response to refeeding leading to lipogenic gene overshoot
Korenfeld N, Gorbonos T, Romero Florian MC, Rotaro D, Goldberg D, Radushkevitz-Frishman T, Charni-Natan M, Bar-Shimon M, Cummins CL, Goldstein I
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Lu C, Jiang Y, Xu W, Bao X
Cell Death and Disease 2023
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Wu D, Zhang Z, Sun W, Yan Y, Jing M, Ma S
Frontiers in Endocrinology 2023
Hepatitis C Virus Alters Macrophage Cholesterol Metabolism Through Interaction with Scavenger Receptors
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Viral Immunology 2022
Nuclear HMGB1 protects from nonalcoholic fatty liver disease through negative regulation of liver X receptor
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Science Advances 2022
G0S2 ameliorates oxidized low-density lipoprotein-induced vascular endothelial cell injury by regulating mitochondrial apoptosis
Liang Z, Diao W, Jiang Y, Zhang Y
Annals of translational medicine 2022
The Role of Lipid Sensing Nuclear Receptors (PPARs and LXR) and Metabolic Lipases in Obesity, Diabetes and NAFLD
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2019
Identification of an intrinsic lysophosphatidic acid acyltransferase activity in the lipolytic inhibitor G 0 /G 1 switch gene 2 (G0S2)
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The FASEB Journal 2019
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Journal of Molecular Biology 2017
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Biochimica et Biophysica Acta (BBA) - Molecular and Cell Biology of Lipids 2017

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