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Downregulation of adipose LPL by PAR2 contributes to the development of hypertriglyceridemia
Yiheng Huang, … , Richard Bucala, Dake Qi
Yiheng Huang, … , Richard Bucala, Dake Qi
Published July 8, 2024
Citation Information: JCI Insight. 2024;9(13):e173240. https://doi.org/10.1172/jci.insight.173240.
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Research Article Metabolism

Downregulation of adipose LPL by PAR2 contributes to the development of hypertriglyceridemia

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Abstract

Lipoprotein lipase (LPL) hydrolyzes circulating triglycerides (TGs), releasing fatty acids (FA) and promoting lipid storage in white adipose tissue (WAT). However, the mechanisms regulating adipose LPL and its relationship with the development of hypertriglyceridemia are largely unknown. WAT from obese humans exhibited high PAR2 expression, which was inversely correlated with the LPL gene. Decreased LPL expression was also inversely correlated with elevated plasma TG levels, suggesting that adipose PAR2 might regulate hypertriglyceridemia by downregulating LPL. In mice, aging and high palmitic acid diet (PD) increased PAR2 expression in WAT, which was associated with a high level of macrophage migration inhibitory factor (MIF). MIF downregulated LPL expression and activity in adipocytes by binding with CXCR2/4 receptors and inhibiting Akt phosphorylation. In a MIF overexpression model, high-circulating MIF levels suppressed adipose LPL, and this suppression was associated with increased plasma TGs but not FA. Following PD feeding, adipose LPL expression and activity were significantly reduced, and this reduction was reversed in Par2–/– mice. Recombinant MIF infusion restored high plasma MIF levels in Par2–/– mice, and the levels decreased LPL and attenuated adipocyte lipid storage, leading to hypertriglyceridemia. These data collectively suggest that downregulation of adipose LPL by PAR2/MIF may contribute to the development of hypertriglyceridemia.

Authors

Yiheng Huang, Liujun Chen, Lisha Li, Yadan Qi, Haibin Tong, Hong Wu, Jinjie Xu, Lin Leng, Sukhinder Cheema, Guang Sun, Zhengyuan Xia, John McGuire, Brian Rodrigues, Lawrence H. Young, Richard Bucala, Dake Qi

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Figure 4

MIF downregulates adipose LPL expression through a CXCR/Akt signaling pathway.

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MIF downregulates adipose LPL expression through a CXCR/Akt signaling pa...
(A–C) Recombinant mouse MIF protein (400 ng/mL) was incubated with differentiated 3T3-L1 adipocytes for 24 hours, and LPL expression and activity were measured. Mature adipocytes were initially isolated from WT and Cd74–/– mice, and suspended cells were treated with vehicle or recombinant mouse MIF (rMIF, 400 ng/mL) for 24 hours. (D) Lpl gene was quantified by qPCR. In 3T3-L1 adipocytes, rMIF was incubated with the CXCR2 or CXCR4 inhibitors, SB225002 (400nM) and WZ811 (5μM). (E and F) The levels of Lpl gene and proteins and Akt phosphorylation were subsequently evaluated. (G) MIF regulated Akt phosphorylation and LPL protein expression in the presence of insulin were assessed by Western blot. All data are analyzed by Student’s t test or 1-way ANOVA and presented as mean ± SD. *P ≤ 0.05 increase vs. rMIF group in E, vs. other groups in G; #P ≤ 0.05 reduction vs. vehicle in A–D and G, vs. other groups in E and F, vs. insulin in G.

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