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Deficiency in TR4 nuclear receptor abrogates Gadd45a expression and increases cytotoxicity induced by ionizing

Shian-Jang Yan1, Yi-Fen Lee, Huei-Ju Ting

  • 1George Whipple Lab for Cancer Research, Department of Pathology, University of Rochester Medical Center, Rochester, NY 14642, USA.

Insights

Testicular receptor 4 (TR4) protects cells from ionizing radiation (IR) damage. TR4 up-regulates the GADD45A gene, crucial for DNA repair, thereby mitigating IR-induced genotoxicity.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Radiation Biology

Background:

  • Testicular receptor 4 (TR4), a nuclear receptor, is known to protect against oxidative stress.
  • The role of TR4 in response to ionizing radiation (IR) has not been fully elucidated.

Purpose of the Study:

  • To investigate the protective role of TR4 against IR-induced cellular damage.
  • To elucidate the molecular mechanism by which TR4 confers radio-protection.

Main Methods:

  • Small hairpin RNA (shRNA) mediated TR4 knockdown in cells.
  • Exposure of cells and TR4 deficient (TR4KO) mice to IR.
  • Quantitative analysis of TR4 and Gadd45a gene expression.
  • Promoter analysis, reporter assays, and chromatin immunoprecipitation (ChIP) assays.

Main Results:

  • TR4 knockdown cells exhibited increased sensitivity to IR-induced cell death.
  • IR exposure upregulated TR4 expression in control cells but not in TR4 knockdown cells.
  • Gadd45a expression was significantly decreased in TR4 deficient tissues and cells, and TR4 deficiency abolished IR-induced Gadd45a response.
  • TR4 directly regulates GADD45A transcription via response elements in intron 3.

Conclusions:

  • TR4 is essential for cellular protection against IR stress.
  • TR4 acts as a sensor for genotoxic stress, upregulating GADD45A expression transcriptionally.
  • This TR4-GADD45A pathway plays a critical role in DNA repair and protection from IR-induced genotoxicity.

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