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.

Cells
|July 13, 2026
PubMed

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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