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Published on: February 10, 2023
Truncated variants of thyroid hormone receptor beta display disease-inflicting malfunctioning at cellular level
Ghausiya Rehman1, Jyoti Kashyap1, Amit Kumar Srivastav2
1Special Centre for Molecular Medicine, Jawaharlal Nehru University, New Delhi, 110067, India.
Abstract:
Thyroid hormone receptor β (THRβ) is a member of the nuclear receptor superfamily of ligand-modulated transcription factors. Upon ligand binding, THRβ sequentially recruits the components of transcriptional machinery to modulate target gene expression. In addition to regulating diverse physiological processes, THRβ plays a crucial role in hypothalamus-pituitary-thyroid axis feedback regulation. Anomalies in THRβ gene/protein structure are associated with onset of diverse disease states. In this study, we investigated disease-inflicting truncated variants of THRβ using in-silico analysis and cell-based assays. We examined the THRβ truncated variants on multiple test parameters, including subcellular localization, ligand-receptor interactions, transcriptional functions, interaction with heterodimeric partner RXR, and receptor-chromatin interactions. Moreover, molecular dynamic simulation approaches predicted that shortened THRβ-LBD due to point mutations contributes proportionally to the loss of structural integrity and receptor stability. Deviant subcellular localization and compromised transcriptional function were apparent with these truncated variants. Present study shows that 'mitotic bookmarking' property of some THRβ variants is also affected. The study highlights that structural and conformational attributes of THRβ are necessary for normal receptor functioning, and any deviations may contribute to the underlying cause of the inflicted diseases. We anticipate that insights derived herein may contribute to improved mechanistic understanding to assess disease predisposition.
Insights
Thyroid hormone receptor beta (THRβ) variants with structural anomalies cause disease by disrupting gene expression and cellular functions. Understanding these structural changes is key to assessing disease risk.
Area of Science:
- Molecular Biology
- Endocrinology
- Genetics
Background:
- Thyroid hormone receptor beta (THRβ) is a nuclear receptor regulating gene expression and physiological processes.
- THRβ is vital for hypothalamus-pituitary-thyroid axis feedback.
- THRβ gene/protein structural anomalies are linked to various diseases.
Purpose of the Study:
- Investigate disease-causing truncated THRβ variants.
- Analyze effects on subcellular localization, ligand binding, and transcriptional activity.
- Assess impact on RXR interaction and chromatin binding.
Main Methods:
- In-silico analysis
- Cell-based assays
- Molecular dynamic simulations
Main Results:
- Truncated THRβ variants exhibit altered subcellular localization and impaired transcriptional function.
- Shortened THRβ ligand-binding domain (LBD) reduces structural integrity and stability.
- Mitotic bookmarking property is affected in some THRβ variants.
Conclusions:
- Structural and conformational integrity of THRβ is essential for normal function.
- Deviations in THRβ structure contribute to disease pathogenesis.
- Findings enhance understanding of disease predisposition related to THRβ.
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