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June 4, 2026Archives of Toxicology0 citationsOpen Access

Triphenyl phosphate promotes lipid accumulation in human mesenchymal stem cells through metabolic stress pathways

MGM. C. GronskeWSW. StuttsDJD. Jima

Key Points

  • This study aims to explore how Triphenyl Phosphate affects lipid accumulation and metabolic stress in human mesenchymal stem cells.
  • hMSCs were treated with DMSO, 10 µM rosiglitazone, or 25 µM TPhP for 14-21 days.
  • Cells were stained to assess lipid accumulation and mineralization, and immunocytochemistry was performed for adipogenic and osteogenic markers.
  • Gene expression analysis was conducted to examine pathways related to lipid biogenesis and ER stress.
  • TPhP exposure led to significant lipid accumulation, without activation of adipogenic differentiation programs.
  • Mineralization was markedly reduced, and co-treatment with PPARγ inhibitors did not mitigate lipid accumulation.
  • Gene expression analysis showed upregulation of lipid biogenesis pathways and minimal changes in classical adipogenic markers.

Abstract

Organophosphate esters (OPEs), used as both plasticizers and flame retardants, are increasingly recognized for their potential to disrupt cellular homeostasis and emerging evidence indicates their ability to induce metabolic stress in diverse biological systems. This study investigated the impact of Triphenyl Phosphate (TPhP) on human mesenchymal stem cell (hMSC) differentiation and cell stress. hMSCs were treated with DMSO (vehicle control), 10 µM rosiglitazone (a PPARγ agonist), or 25 µM TPhP for 14-21 days. Following treatment, cells were stained to assess nuclear integrity, lipid accumulation, and mineralization. Immunocytochemistry (ICC) for osteogenic and adipogenic markers was used to determine whether TPhP promotes adipogenesis under osteogenic conditions. TPhP exposure led to significant lipid accumulation without activation of adipogenic differentiation programs and markedly reduced mineralization. In particular, co-treatment with PPARγ inhibitors did not mitigate lipid accumulation or modulate the expression of adipogenic regulators. Gene expression analysis following TPhP exposures revealed upregulation of pathways involved in lipid biogenesis, triglyceride synthesis, phospholipid metabolism and endoplasmic reticulum (ER) stress, with minimal changes to classical adipogenic markers. These findings indicate that TPhP disrupts the metabolic balance between osteogenesis and lipid metabolism, with the potential to promote ectopic lipid deposition within the bone forming environment. This dysregulation is relevant for the development of metabolic disorders, including obesity, type 2 diabetes, and metabolic bone diseases, including osteoporosis.

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Cite This Study

Gronske et al. (2026) studied this question.

synapsesocial.com/papers/6a211852d499ed480b170e4bhttps://doi.org/10.1007/s00204-026-04445-5
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