Naturally occurring C-terminal splice variants of nuclear receptors

Michiel van der Vaart1, Marcel J M Schaaf

  • 1Molecular Cell Biology, Institute of Biology (IBL), Leiden University, Leiden, The Netherlands.

Insights

Alternative splicing creates nuclear receptor variants that inhibit normal receptor function. These variants, like the human glucocorticoid receptor beta-isoform (hGRbeta), may play a role in disease development.

Area of Science:

  • Molecular biology
  • Endocrinology
  • Genetics

Background:

  • Alternative mRNA splicing generates nuclear receptor variants lacking the ligand-binding domain (LBD).
  • These variants possess unique C-terminal amino acid sequences and differ from canonical receptors.
  • At least nine such variants occur in humans, with thirteen identified in vertebrates.

Purpose of the Study:

  • To investigate the in vivo function and relevance of C-terminal nuclear receptor splice variants.
  • To review existing literature on the human glucocorticoid receptor beta-isoform (hGRbeta) as a model.
  • To determine if these variants act as dominant-negative inhibitors in vivo.

Main Methods:

  • Literature review focusing on hGRbeta and its dominant-negative effects.
  • Analysis of in vitro studies on C-terminal splice variants.
  • Examination of physiologically relevant readouts for in vivo function.

Main Results:

  • Most C-terminal splice variants do not bind endogenous ligands or induce transcription.
  • Ten variants exhibit dominant-negative activity on canonical receptor function in vitro.
  • hGRbeta's dominant-negative effect is well-established in vivo, potentially altering gene transcription independently.

Conclusions:

  • C-terminal nuclear receptor splice variants function as dominant-negative inhibitors of receptor signaling in vivo.
  • Aberrant expression of these variants, such as hGRbeta, may contribute to disease pathogenesis.
  • Increased hGRbeta levels correlate with glucocorticoid resistance and immune-related diseases.

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