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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.
Abstract:
The evolution, molecular behavior, and physiological function of nuclear receptors are of particular interest given their diverse roles in regulating essential biological processes. The vitamin D receptor (VDR) is well known for its canonical roles in calcium homeostasis and skeletal maintenance. Additionally, VDR has received an increased amount of attention due to the discovery of numerous non-calcemic functions, including the detoxification of lithocholic acid. Lithocholic acid is a toxic metabolite of chenodeoxycholic acid, a primary bile acid. The partnership between the VDR and lithocholic acid has been hypothesized to be a recent adaptation that evolved to mediate the detoxification and elimination of lithocholic acid from the gut. This partnership is speculated to be limited to higher vertebrates (birds and mammals), as lower vertebrates do not synthesize the parent compound of lithocholic acid. However, the molecular functions associated with the observed insensitivity of basal VDRs to lithocholic acid have not been explored. Here we characterize canonical nuclear receptor functions of VDRs from select species representing key nodes in vertebrate evolution and span a range of bile salt phenotypes. Competitive ligand binding assays revealed that the receptor's affinity for lithocholic acid is highly conserved across species, suggesting that lithocholic acid affinity is an ancient and non-adaptive trait. However, transient transactivation assays revealed that lithocholic acid-mediated VDR activation might have evolved more recently, as the non-mammalian receptors did not respond to lithocholic acid unless exogenous coactivator proteins were co-expressed. Subsequent functional assays indicated that differential lithocholic acid-mediated receptor activation is potentially driven by differential protein-protein interactions between VDR and nuclear receptor coregulator proteins. We hypothesize that the vitamin D receptor-lithocholic acid partnership evolved as a by-product of natural selection on the ligand-receptor partnership between the vitamin D receptor and the native VDR ligand: 1α,25-dihydroxyvitamin D3, the biologically active metabolite of vitamin D3.
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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