Evolutionary and Functional Diversification of the Vitamin D Receptor-Lithocholic Acid Partnership

Erin M Kollitz1,2, Guozhu Zhang3, Mary Beth Hawkins4

  • 1Toxicology Program, Department of Biological Sciences, North Carolina State University, Raleigh, North Carolina, United States of America.

Plos One
|December 13, 2016
PubMed

Insights

The vitamin D receptor (VDR) binds lithocholic acid across species, but its activation by this toxic bile acid is a more recent evolutionary trait. This activation depends on coactivator proteins, suggesting a byproduct evolution of the VDR-lithocholic acid partnership.

Area of Science:

  • Molecular Endocrinology
  • Evolutionary Biology
  • Biochemistry

Background:

  • The vitamin D receptor (VDR) is a nuclear receptor crucial for calcium homeostasis and has emerging roles in detoxification.
  • Lithocholic acid, a toxic bile acid metabolite, interacts with VDR, but the evolutionary basis of this interaction is unclear.
  • Previous hypotheses suggested the VDR-lithocholic acid partnership is a recent adaptation in higher vertebrates.

Purpose of the Study:

  • To investigate the evolutionary history and molecular mechanisms of VDR interaction with lithocholic acid across vertebrate species.
  • To determine if VDR's affinity for lithocholic acid and its activation by this ligand are ancient or recently evolved traits.

Main Methods:

  • Comparative analysis of VDRs from diverse vertebrate species.
  • Competitive ligand binding assays to assess lithocholic acid affinity.
  • Transient transactivation assays to evaluate lithocholic acid-mediated VDR activation.
  • Functional assays examining VDR interactions with nuclear receptor coregulators.

Main Results:

  • VDR's high affinity for lithocholic acid is conserved across all tested vertebrate species, indicating an ancient trait.
  • Lithocholic acid-mediated VDR activation was observed only in species co-expressing VDR with specific coactivator proteins.
  • Non-mammalian VDRs showed limited response to lithocholic acid without exogenous coactivators, suggesting differential coregulator interactions.

Conclusions:

  • The VDR's ability to bind lithocholic acid is ancient, but its functional activation by this ligand evolved more recently.
  • Differential VDR activation by lithocholic acid is likely driven by variations in protein-protein interactions with nuclear receptor coregulators.
  • The VDR-lithocholic acid partnership may have evolved as a byproduct of selection on the VDR's interaction with its native ligand, vitamin D.

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