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Published on: December 27, 2024
Trialkyltin compounds bind retinoid X receptor to alter human placental endocrine functions
Tsuyoshi Nakanishi1, Jun-ichi Nishikawa, Youhei Hiromori
1Department of Toxicology, Graduate School of Pharmaceutical Sciences, Osaka University, 1-6, Yamadaoka Suita, Osaka 565-0871, Japan. nakanishi@phs.osaka-u.ac.jp
Abstract:
Retinoid X receptor (RXR) is a nuclear receptor that plays important and multiple roles in mammalian development and homeostasis. We previously reported that, in human choriocarcinoma cells, tributyltin chloride and triphenyltin hydroxide, which are typical environmental contaminants and cause masculinization in female mollusks, are potent stimulators of human chorionic gonadotropin production and aromatase activity, which play key endocrine functions in maintaining pregnancy and fetal development. However, the molecular mechanism through which these compounds stimulate these endocrine functions remains unclear. Our current study shows that trialkyltin compounds, including tributyltin chloride and triphenyltin hydroxide, function as RXR agonists. Trialkyltins directly bind to the ligand-binding domain of RXR with high affinity and function as transcriptional activators. Unlike the natural RXR ligand, 9-cis-retinoic acid, the activity of trialkyltins is RXR specific and does not activate the retinoic acid receptor pathway. In addition, trialkyltins activate RXR to stimulate the expression of a luciferase reporter gene containing the human placental promoter I.1 sequence of aromatase, suggesting that trialkyltins stimulate human placental endocrine functions through RXR-dependent signaling pathways. Therefore, our results suggest that activation of RXR may be a novel mechanism by which trialkyltins alter human endocrine functions.
Insights
Environmental contaminants like tributyltin and triphenyltin act as Retinoid X receptor (RXR) agonists. These compounds directly activate RXR, influencing human endocrine functions through novel pathways.
Area of Science:
- Endocrinology
- Molecular Biology
- Environmental Science
Background:
- Retinoid X receptor (RXR) is crucial for mammalian development and homeostasis.
- Environmental contaminants tributyltin and triphenyltin stimulate human chorionic gonadotropin and aromatase activity.
- The molecular mechanism of these endocrine effects was previously unclear.
Purpose of the Study:
- To elucidate the molecular mechanism by which trialkyltin compounds affect human endocrine functions.
- To investigate if trialkyltins act as agonists for Retinoid X receptor (RXR).
Main Methods:
- Investigated trialkyltin compounds' interaction with the ligand-binding domain of RXR.
- Assessed trialkyltins' ability to function as transcriptional activators.
- Utilized a luciferase reporter gene assay with the human placental aromatase promoter I.1 sequence.
Main Results:
- Trialkyltin compounds directly bind to RXR with high affinity, acting as agonists.
- Trialkyltin activity is specific to RXR and does not activate the retinoic acid receptor pathway.
- Trialkyltins stimulate aromatase gene expression via RXR-dependent pathways, indicating altered placental endocrine function.
Conclusions:
- Trialkyltins function as RXR agonists, directly activating the receptor.
- Trialkyltin-induced stimulation of human placental endocrine functions occurs through RXR-dependent signaling.
- RXR activation represents a novel mechanism for trialkyltin-mediated alterations in human endocrine functions.
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