TNF-alpha stimulates the ACAT1 expression in differentiating monocytes to promote the CE-laden cell formation
JOURNAL OF LIPID RESEARCH
Authors: Lei, Lei; Xiong, Ying; Chen, Jia; Yang, Jin-Bo; Wang, Yi; Yang, Xin-Ying; Chang, Catherine C. Y.; Song, Bao-Liang; Chang, Ta-Yuan; Li, Bo-Liang
Abstract
High levels of the inflammatory cytokine tumor necrosis factor-alpha (TNF-alpha) are present in atherosclerotic lesions. TNF-alpha regulates expression of multiple genes involved in various stages of atherosclerosis, and it exhibits proatherosclerotic and antiatherosclerotic properties. ACAT catalyzes the formation of cholesteryl esters (CE) in monocytes/macrophages, and it promotes the foam cell formation at the early stage of atherosclerosis. We hypothesize that TNF-alpha may be involved in regulating the ACAT gene expression in monocytes/macrophages. In this article, we show that in cultured, differentiating human monocytes, TNF-alpha enhances the expression of the ACAT1 but not ACAT2 gene, increases the cholesteryl ester accumulation, and promotes the lipid-laden cell formation. Several other proinflammatory cytokines tested do not affect the ACAT1 gene expression. The stimulation effect is consistent with a receptor-dependent process, and is blocked by using nuclear factor-kappa B (NF-kappa B) inhibitors. A functional and unique NF-kappa B element located within the human ACAT1 gene proximal promoter is required to mediate the action of TNF-alpha. Our data demonstrate that TNF-alpha, through the NF-kappa B pathway, specifically enhances the expression of human ACAT1 gene to promote the CE-laden cell formation from the differentiating monocytes, and our data support the hypothesis that TNF-alpha is proatherosclerotic during early phase of lesion development.-Lei, L., Y. Xiong, J. Chen, J-B. Yang, Y. Wang, X-Y. Yang, C. C. Y. Chang, B-L. Song, T-Y. Chang, and B-L. Li. TNF-alpha stimulates the ACAT1 expression in differentiating monocytes to promote the CE-laden cell formation. J. Lipid Res. 2009. 50: 1057-1067.
Differential modulation of ACAT1 and ACAT2 transcription and activity by long chain free fatty acids in cultured cells
BIOCHEMISTRY
Authors: Seo, T; Oelkers, PM; Giattina, MR; Worgall, TS; Sturley, SL; Deckelbaum, RJ
Abstract
Fatty acyl CoA and cholesterol are the substrates for cholesteryl ester synthesis by acyl coenzyme A:cholesterol acyltransferase (ACAT). Two ACAT genes have been identified ACAT1 is expressed ubiquitously while ACAT2 is primarily expressed in intestine and liver, We tested effects of different free fatty acids (FFAs) on ACAT1 and ACAT2 expression and activity in HepG2 human hepatocytes and THP1 human macrophages. Incubation of oleic acid, arachidonic acid, or eicosapentaenoic acid, but not 25-hydroxycholesterol, induced ACAT1 mRNA levels 1.5-2-fold in HepG2, with no affect on ACAT2 mRNA. FFA had no affect on ACAT1 mRNA in THP1 cells. To determine if FFAs affect ACAT1 or ACAT2 posttranscriptionally, cells were labeled with [H-3]cholesterol in the presence of the different FFAs for 1-5 h. Both HepG2 and THP1 cells showed the greatest cholesteryl ester production with oleic acrid. This was also confirmed by the observation that more [H-3]oleic acid incorporated into CE compared to [H-3]eicosapentaenoic acid, even though there was no difference in the total uptake of these FFAs. In ACAT-deficient SRD4, CHO cells stably transfected with human ACAT1 or ACAT2, ACAT1 expressing cells showed a strong preference for oleic acid while ACAT2 expressing cells utilized unsaturated FFAs. Acyl CoA substrate specificity was further tested in microsomes isolated from these cells as well as HepG2 and THP1, THP1 and ACAT1 cells utilized oleoyl CoA preferentially. In contrast, HepG2 and ACAT2 microsomes utilized linolenoyl CoA as well. We conclude that FFAs increase ACAT1 mRNA levels in a cell specific manner, and furthermore that the ACAT reactions exhibit differential FFA utilization.