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Published on: December 19, 2019
2,2',4,4'-Tetrabromodiphenyl Ether (PBDE 47) Selectively Stimulates Proatherogenic PPARγ Signatures in Human THP-1
Qidong Ren1,2, Xinni Xie1, Chuanfang Zhao1
1State Key Laboratory of Environmental Chemistry and Eco-Toxicology, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing 100085, China.
Abstract:
2,2',4,4'-Tetrabromodiphenyl ether (PBDE 47) is one of the most prominent PBDE congeners detected in the human body, suggesting that the potential health risks of PBDE 47 should be thoroughly considered. However, the cardiovascular toxicity of PBDE 47 remains poorly understood. Here, toxic outcomes of PBDE 47 in human THP-1 macrophages concerning foam cell formation, which play crucial roles in the occurrence and development of atherosclerosis, were elucidated. First, our results indicated that PBDE 47 affected the PPARγ pathway most efficiently in THP-1 macrophages by transcriptomic analysis. Second, the PPARγ target genes CD36 and FABP4, responsible for lipid uptake and accumulation in macrophages, were consistently upregulated both at transcriptional and translational levels in THP-1 macrophages upon PBDE 47. Unexpectedly, PBDE 47 failed to activate the PPARγ target gene LXRα and PPARγ-LXRα-ABCA1/G1 cascade, which is activated by the PPARγ full agonist rosiglitazone and enables cholesterol efflux in macrophages. Thus, coincident with the selective upregulation of the PPARγ target genes CD36 and FABP4, PBDE 47, distinct from rosiglitazone, functionally resulted in more lipid accumulation and oxLDL uptake in THP-1 macrophages through high-content analysis (HCA). Moreover, these effects were markedly abrogated by the addition of the PPARγ antagonist T0070907. Mechanistically, the structural basis of selective activation of PPARγ by PBDE 47 was explored by molecular docking and dynamics simulation, which indicated that PBDE 47 interacted with the PPARγ ligand binding domain (PPARγ-LBD) distinctively from that of rosiglitazone. PBDE 47 was revealed to interact with helix 3 and helix 5 but not helix 12 in the PPARγ-LBD. Collectively, these results unraveled the potential cardiovascular toxicity of PBDE 47 by selective activation of PPARγ to facilitate foam cell formation for the first time.
Insights
2,2
Area of Science:
- Environmental Toxicology
- Cardiovascular Biology
- Molecular Pharmacology
Background:
- 2,2',4,4'-Tetrabromodiphenyl ether (PBDE 47) is a prevalent human contaminant.
- Cardiovascular toxicity of PBDE 47 is not well understood.
- Foam cell formation in macrophages is critical in atherosclerosis development.
Purpose of the Study:
- To elucidate the toxic effects of PBDE 47 on human THP-1 macrophages.
- To investigate PBDE 47's role in foam cell formation and its underlying molecular mechanisms.
- To explore the interaction of PBDE 47 with the PPARγ pathway.
Main Methods:
- Transcriptomic analysis to identify affected pathways.
- Western blotting and qPCR to assess gene and protein expression.
- High-content analysis (HCA) for lipid accumulation and oxLDL uptake.
- Molecular docking and dynamics simulations for mechanistic insights.
Main Results:
- PBDE 47 selectively activated the PPARγ pathway in THP-1 macrophages.
- Upregulation of PPARγ target genes CD36 and FABP4, promoting lipid uptake.
- PBDE 47 induced lipid accumulation and oxLDL uptake, distinct from rosiglitazone.
- Structural analysis revealed unique PBDE 47 interactions within the PPARγ ligand binding domain.
Conclusions:
- PBDE 47 promotes foam cell formation by selectively activating PPARγ.
- This mechanism contributes to the potential cardiovascular toxicity of PBDE 47.
- Findings provide novel insights into PBDE 47's atherogenic potential.

