丁酸钠
乙酰化
曲古抑菌素A
脂多糖
组蛋白脱乙酰基酶
化学
基因沉默
内分泌学
内科学
HDAC8型
组蛋白脱乙酰基酶5
组蛋白
HDAC4型
生物
生物化学
医学
基因
作者
Shihab Kochumon,Texy Jacob,Merin Koshy,Fatema Al-Rashed,Sardar Sindhu,Ebaa Al-Ozairi,Fahd Al-Mulla,Evan D. Rosen,Rasheed Ahmad
出处
期刊:Journal of Immunology
[The American Association of Immunologists]
日期:2022-08-15
卷期号:209 (4): 731-741
被引量:3
标识
DOI:10.4049/jimmunol.2100928
摘要
IL-6 is elevated in obese individuals and participates in the metabolic dysfunction associated with that condition. However, the mechanisms that promote IL-6 expression in obesity are incompletely understood. Because elevated levels of palmitate and LPS have been reported in obesity, we investigated whether these agents interact to potentiate IL-6 production. In this study, we report that LPS induces higher levels of IL-6 in human monocytes in the presence of palmitate. Notably, the priming effect of palmitate is associated with enhanced p300 binding and transcription factor recruitment to Il6 promoter regions. Gene silencing of p300 blocks this action of palmitate. RNA polymerase II recruitment was also enhanced at the Il6 promoter in palmitate/LPS-exposed cells. Acetylation levels of H3K9 and H3K18 were increased in monocytes treated with palmitate. Moreover, LPS stimulation of palmitate-treated cells led to increased levels of the transcriptionally permissive acetylation marks H3K9/H3K18 in the Il6 promoter compared with LPS alone. The effect of palmitate on LPS-induced IL-6 production was suppressed by the inhibition of histone acetyltransferases. Conversely, histone deacetylase inhibitors trichostatin A or sodium butyrate can substitute for palmitate in IL-6 production. Esterification of palmitate with CoA was involved, whereas β-oxidation and ceramide biosynthesis were not required, for the induction of IL-6 and H3K9/H3K18 acetylation. Monocytes of obese individuals showed significantly higher H3K9/H3K18 acetylation and Il6 expression. Overall, our findings support a model in which increased levels of palmitate in obesity create a setting for LPS to potentiate IL-6 production via chromatin remodeling, enabling palmitate to contribute to metabolic inflammation.
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