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Adipocyte-derived PGE2 is required for intermittent fasting–induced Treg proliferation and improvement of insulin sensitivity
Chunqing Wang, Xing Zhang, Liping Luo, Yan Luo, Xin Yang, Xiaofeng Ding, Lu Wang, Huyen Le, Lily Elizabeth R. Feldman, Xuebo Men, Cen Yan, Wendong Huang, Yingmei Feng, Feng Liu, Xuexian O. Yang, Meilian Liu
Chunqing Wang, Xing Zhang, Liping Luo, Yan Luo, Xin Yang, Xiaofeng Ding, Lu Wang, Huyen Le, Lily Elizabeth R. Feldman, Xuebo Men, Cen Yan, Wendong Huang, Yingmei Feng, Feng Liu, Xuexian O. Yang, Meilian Liu
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Research Article Metabolism

Adipocyte-derived PGE2 is required for intermittent fasting–induced Treg proliferation and improvement of insulin sensitivity

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Abstract

The intermittent fasting (IF) diet has profound benefits for diabetes prevention. However, the precise mechanisms underlying IF’s beneficial effects remain poorly defined. Here, we show that the expression levels of cyclooxygenase-2 (COX-2), an enzyme that produces prostaglandins, are suppressed in white adipose tissue (WAT) of obese humans. In addition, the expression of COX-2 in WAT is markedly upregulated by IF in obese mice. Adipocyte-specific depletion of COX-2 led to reduced fractions of CD4+Foxp3+ Tregs and a substantial decrease in the frequency of CD206+ macrophages, an increase in the abundance of γδT cells in WAT under normal chow diet conditions, and attenuation of IF-induced antiinflammatory and insulin-sensitizing effects, despite a similar antiobesity effect in obese mice. Mechanistically, adipocyte-derived prostaglandin E2 (PGE2) promoted Treg proliferation through the CaMKII pathway in vitro and rescued Treg populations in adipose tissue in COX-2–deficient mice. Ultimately, inactivation of Tregs by neutralizing anti-CD25 diminished IF-elicited antiinflammatory and insulin-sensitizing effects, and PGE2 restored the beneficial effects of IF in COX-2–KO mice. Collectively, our study reveals that adipocyte COX-2 is a key regulator of Treg proliferation and that adipocyte-derived PGE2 is essential for IF-elicited type 2 immune response and metabolic benefits.

Authors

Chunqing Wang, Xing Zhang, Liping Luo, Yan Luo, Xin Yang, Xiaofeng Ding, Lu Wang, Huyen Le, Lily Elizabeth R. Feldman, Xuebo Men, Cen Yan, Wendong Huang, Yingmei Feng, Feng Liu, Xuexian O. Yang, Meilian Liu

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Figure 5

Adoptive transfer of Tregs reverses COX-2–KO–caused AT inflammation and insulin resistance.

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Adoptive transfer of Tregs reverses COX-2–KO–caused AT inflammation and ...
For the following studies, mouse GFP+CD4+ T cells were isolated from lymph nodes and spleens of Foxp3-eGFP mice, and IP injection of CD4+GFP+ T cells which were positive Treg cells and CD4+GFP- as negative control cells to 8 weeks HFD-fed COX-2–KO and control (Ctrl) mice. (A) There was little effect of adoptive transfer on the BW in COX-2–KO and control mice 2 weeks post transfer. Flow cytometry analysis of CD4+GFP+ cells (B), CD4+Foxp3+ Treg cells (C) and the proportion of Foxp3+ Treg in CD4+ cells (D) in eWAT showed the successful transfer of Tregs in AT. Adoptive transfer of Tregs increased CD11b+CD206+ cell fraction (E) and the proportion of CD11b+CD206+ in CD11b+ cells (F), while suppressed γδT+CD3+ cell population (G) and the proportion of γδT+CD3+ cell in total CD3+ cells (H). Adoptive transfer of Treg cells rescued COX-2 deficiency-induced glucose (I) and insulin (J) intolerance. *P < 0.05 and **P < 0.01 Ctrl vehicle (Veh) vs. Ctrl Treg; #P < 0.05 and ##P < 0.01 for Ctrl Veh vs. KO Veh; $$P < 0.01 for KO Veh vs. KO Tregs; no significant difference was found between Ctrl Tregs and KO Tregs. (A–H) n = 4–7/group. (B) Representative data from 3 independent experiments are reported. ANOVA was used to analyze the data in this figure. Data are reported as mean ± SEM. *P < 0.05; **P < 0.01.

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