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Coregulatory Networks Remodel the Disease-Specific Functions of Orphan Nuclear Receptor TR4
Yunlong Liu1, Qing Yu1, Shuyuan Cheng1
1School of Life Sciences, Tiangong University, Tianjin 300387, China.
Abstract:
Testicular receptor 4 (TR4, NR2C2) is an orphan nuclear receptor involved in the regulation of metabolism, inflammation, cardiovascular disease, and cancer. Accumulating evidence indicates that TR4 exhibits functional plasticity, exerting protective or pathogenic effects depending on tissue and disease context, and sometimes displaying opposing roles within the same disease. However, the mechanisms underlying this functional duality remain poorly understood. Recent studies indicate that TR4 activity is determined not only by the receptor itself but also by dynamic coregulatory networks. Through interactions with coactivators, corepressors, epigenetic regulators, and environmental signaling pathways, TR4 integrates metabolic cues to generate context-dependent transcriptional programs. Coactivator networks centered on PGC-1α, steroid receptor coactivator (SRC) family members, and CBP/p300 support oxidative metabolism and anti-inflammatory responses, whereas RIP140-, NCoR/SMRT-, and HDAC-associated networks promote lipid accumulation, chronic inflammation, fibrosis, and tumor progression. Regulators such as JAZF1 further influence TR4 activity by reshaping coregulator recruitment and target-gene selection. In this review, we summarize the structural basis of TR4 regulation and discuss how coregulatory network remodeling governs its functions in metabolic, cardiovascular, inflammatory, and malignant diseases. We propose that TR4 functions as a context-dependent transcriptional platform whose activities are defined by its coregulatory landscape, providing a framework for precision therapies.
Insights
Testicular receptor 4 (TR4) acts as a flexible regulator in metabolism and disease. Its dual roles depend on interactions with coactivators and corepressors, shaping context-specific functions.
Area of Science:
- Molecular biology
- Endocrinology
- Genetics
Background:
- Testicular receptor 4 (TR4, NR2C2) is an orphan nuclear receptor with diverse roles in metabolism, inflammation, cardiovascular health, and cancer.
- TR4 exhibits functional plasticity, acting protectively or pathologically based on tissue and disease context, but the mechanisms are unclear.
Purpose of the Study:
- To review the structural basis of TR4 regulation.
- To discuss how coregulatory network remodeling influences TR4 functions in various diseases.
- To propose TR4 as a context-dependent platform for precision therapies.
Main Methods:
- Literature review of structural biology and molecular mechanisms.
- Analysis of TR4 interactions with coactivators, corepressors, and epigenetic regulators.
- Integration of findings related to metabolic, cardiovascular, inflammatory, and malignant diseases.
Main Results:
- TR4 activity is modulated by dynamic coregulatory networks, including coactivators (PGC-1α, SRC, CBP/p300) and corepressors (RIP140, NCoR/SMRT, HDAC).
- Specific coregulatory networks dictate TR4's influence on oxidative metabolism, inflammation, lipid accumulation, fibrosis, and tumor progression.
- Regulators like JAZF1 can alter TR4's target gene selection and coregulator recruitment.
Conclusions:
- TR4 functions as a context-dependent transcriptional platform, with its activities determined by its coregulatory landscape.
- Understanding TR4's coregulatory networks is crucial for deciphering its dual roles in disease.
- This framework offers potential for developing precision therapies targeting TR4.
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