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Updated: Feb 7, 2026

An Adipocyte Cell Culture Model to Study the Impact of Protein and Micro-RNA Modulation on Adipocyte Function
Published on: May 4, 2021
Tributyltin induces a transcriptional response without a brite adipocyte signature in adipocyte models
Stephanie Kim1, Amy Li2,3, Stefano Monti2,3
1Department of Environmental Health, Boston University School of Public Health, 715 Albany Street, R-405, Boston, MA, 02118, USA.
Abstract:
Tributyltin (TBT), a peroxisome proliferator-activated receptor γ (PPARγ)/retinoid X receptor (RXR) ligand and founding member of the environmental obesogen chemical class, induces adipocyte differentiation and suppresses bone formation. A growing number of environmental PPARγ ligands are being identified. However, the potential for environmental PPARγ ligands to induce adverse metabolic effects has been questioned because PPARγ is a therapeutic target in treatment of type II diabetes. We evaluated the molecular consequences of TBT exposure during bone marrow multipotent mesenchymal stromal cell (BM-MSC) differentiation in comparison to rosiglitazone, a therapeutic PPARγ ligand, and LG100268, a synthetic RXR ligand. Mouse primary BM-MSCs (female, C57BL/6J) undergoing bone differentiation were exposed to maximally efficacious and human relevant concentrations of rosiglitazone (100 nM), LG100268 (100 nM) or TBT (80 nM) for 4 days. Gene expression was assessed using microarrays, and in silico functional annotation was performed using pathway enrichment analysis approaches. Pathways related to osteogenesis were downregulated by all three ligands, while pathways related to adipogenesis were upregulated by rosiglitazone and TBT. However, pathways related to mitochondrial biogenesis and brown-in-white (brite) adipocyte differentiation were more significantly upregulated in rosiglitazone-treated than TBT-treated cells. The lack of induction of genes involved in adipocyte energy dissipation by TBT was confirmed by an independent gene expression analysis in BM-MSCs undergoing adipocyte differentiation and by analysis of a publically available 3T3 L1 data set. Furthermore, rosiglitazone, but not TBT, induced mitochondrial biogenesis and respiration. This study is the first to show that an environmental PPARγ ligand has a limited capacity to induce health-promoting activities of PPARγ.
Insights
Environmental tributyltin (TBT) exposure, unlike therapeutic drugs, has limited capacity to promote beneficial PPARγ activities. TBT induces adipogenesis but not energy-dissipating pathways, unlike rosiglitazone.
Area of Science:
- Endocrinology
- Environmental Health
- Cell Biology
Background:
- Tributyltin (TBT) is an environmental obesogen and a ligand for peroxisome proliferator-activated receptor gamma (PPARγ)/retinoid X receptor (RXR).
- PPARγ ligands are implicated in adipocyte differentiation and bone formation, with therapeutic applications in type II diabetes.
- The metabolic effects of environmental PPARγ ligands are not fully understood.
Purpose of the Study:
- To compare the molecular effects of TBT with therapeutic PPARγ and RXR ligands on bone marrow mesenchymal stromal cell (BM-MSC) differentiation.
- To investigate the capacity of TBT to induce adipogenesis and related metabolic pathways compared to rosiglitazone.
Main Methods:
- Primary mouse BM-MSCs were exposed to TBT, rosiglitazone, or LG100268 during osteogenic differentiation.
- Gene expression was analyzed using microarrays and pathway enrichment analysis.
- Validation involved independent gene expression analysis and public 3T3 L1 data.
Main Results:
- All ligands downregulated osteogenesis pathways.
- Rosiglitazone and TBT upregulated adipogenesis pathways.
- Rosiglitazone, but not TBT, significantly upregulated mitochondrial biogenesis and energy-dissipating pathways.
Conclusions:
- Environmental PPARγ ligands like TBT have a limited ability to induce the health-promoting effects of PPARγ.
- TBT promotes adipogenesis but lacks the beneficial metabolic activities seen with therapeutic ligands like rosiglitazone.
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