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Updated: Mar 2, 2026

Reverse Yeast Two-hybrid System to Identify Mammalian Nuclear Receptor Residues that Interact with Ligands and/or Antagonists
Published on: November 15, 2013
Evolution of Nuclear Receptors and Ligand Signaling: Toward a Soft Key-Lock Model?
Guillaume Holzer1, Gabriel V Markov2, Vincent Laudet3
1Institut de Génomique Fonctionnelle de Lyon, Université de Lyon, Université Lyon 1, CNRS, Ecole Normale Supérieure de Lyon, Lyon Cedex 07, France.
Abstract:
Nuclear receptors (NRs) are a family of ligand-regulated transcription factors that modulate a wide variety of physiological functions in a ligand-dependent manner. The first NRs were discovered as receptors of well-known hormones such as 17β-estradiol, corticosteroids, or thyroid hormones. In these cases a direct activation of the receptor transcriptional activity by a very specific ligand, with nanomolar affinity, was demonstrated, providing a strong conceptual framework to understand the mechanism of action of these hormones. However, the discovery that some NRs are able to bind different ligands with micromolar affinity was a first sign that the univocal relationship between a specific receptor (e.g., TR) and a specific ligand (e.g., thyroid hormone) should not be generalized to the whole family. These discussions about the nature of NR ligands have been reinforced by the study of the hormone/receptor couple evolution. Indeed when the ligand is not a protein but a small molecule derived from a biochemical pathway, a simple coevolution mechanism between the ligand and the receptor cannot operate. We and others have recently shown that the ligands acting for a given NR early on during evolution were often different from the classical mammalian ligands. This suggests that the NR/ligand evolutionary relationship is more dynamic than anticipated and that the univocal relationship between a receptor and a specific molecule may be an oversimplification. Moreover, classical NRs can have different ligands acting in a tissue-specific fashion with significant impact on their function. This also suggests that we may have to reevaluate the pharmacology of the ligand/receptor couple.
Insights
Nuclear receptors (NRs) bind various ligands, challenging the idea of a single ligand per receptor. Their evolutionary and tissue-specific ligand interactions reveal a more dynamic and complex relationship than previously understood.
Area of Science:
- Endocrinology
- Molecular Biology
- Evolutionary Biology
Background:
- Nuclear receptors (NRs) are ligand-regulated transcription factors controlling diverse physiological processes.
- Historically, NRs were linked to specific hormones (e.g., estradiol, thyroid hormone) with high affinity.
- The discovery of NRs binding multiple ligands with varying affinities questioned this strict receptor-ligand relationship.
Purpose of the Study:
- To investigate the evolutionary dynamics of NR/ligand interactions.
- To explore the concept of tissue-specific ligand action in NRs.
- To re-evaluate the pharmacological understanding of NR ligand interactions.
Main Methods:
- Comparative analysis of NR/ligand evolution across species.
- Examination of ligand binding affinities (nanomolar vs. micromolar).
- Review of studies on tissue-specific NR functions.
Main Results:
- Early evolutionary ligands for NRs often differ from classical mammalian ligands.
- NRs can bind multiple ligands, indicating a dynamic evolutionary relationship.
- Tissue-specific ligand interactions significantly impact NR function.
Conclusions:
- The relationship between nuclear receptors and their ligands is more complex and dynamic than a simple one-to-one model.
- Evolutionary and tissue-specific contexts are crucial for understanding NR pharmacology.
- A reevaluation of NR ligand/receptor pharmacology is warranted based on new findings.
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