Related Experiment Video
Updated: May 15, 2026

Reverse Yeast Two-hybrid System to Identify Mammalian Nuclear Receptor Residues that Interact with Ligands and/or Antagonists
Published on: November 15, 2013
Solution Structures of PPARγ2/RXRα Complexes
Judit Osz1, Maxim V Pethoukhov, Serena Sirigu
1Department of Integrative Structural Biology, Institut de Génétique et de Biologie Moléculaire et Cellulaire (IGBMC), Centre National de Recherche Scientifique (CNRS) UMR 7104, Institut National de Santé et de Recherche Médicale (INSERM) U964, Université de Strasbourg, 67404 Illkirch, France.
Abstract:
PPARγ is a key regulator of glucose homeostasis and insulin sensitization. PPARγ must heterodimerize with its dimeric partner, the retinoid X receptor (RXR), to bind DNA and associated coactivators such as p160 family members or PGC-1α to regulate gene networks. To understand how coactivators are recognized by the functional heterodimer PPARγ/RXRα and to determine the topological organization of the complexes, we performed a structural study using small angle X-ray scattering of PPARγ/RXRα in complex with DNA from regulated gene and the TIF2 receptor interacting domain (RID). The solution structures reveal an asymmetry of the overall structure due to the crucial role of the DNA in positioning the heterodimer and indicate asymmetrical binding of TIF2 to the heterodimer.
Insights
Peroxisome proliferator-activated receptor gamma (PPARγ) and retinoid X receptor (RXR) form a heterodimer crucial for gene regulation. Structural studies reveal DNA binding induces asymmetry, affecting coactivator TIF2 binding.
Area of Science:
- Molecular Biology
- Structural Biology
- Endocrinology
Background:
- Peroxisome proliferator-activated receptor gamma (PPARγ) is vital for glucose homeostasis and insulin sensitivity.
- PPARγ requires heterodimerization with retinoid X receptor (RXR) to bind DNA and regulate gene networks.
- Coactivators like p160 and PGC-1α interact with the PPARγ/RXR complex to modulate gene expression.
Purpose of the Study:
- To elucidate the structural basis of coactivator recognition by the PPARγ/RXRα heterodimer.
- To determine the topological organization of PPARγ/RXRα complexes bound to DNA and coactivators.
- To understand how DNA influences the structure and function of the PPARγ/RXRα heterodimer.
Main Methods:
- Small-angle X-ray scattering (SAXS) was employed to study the structural properties of the PPARγ/RXRα heterodimer.
- The study analyzed complexes of PPARγ/RXRα with DNA from a regulated gene and the TIF2 receptor interacting domain (RID).
- Solution structures were determined to reveal the overall architecture and binding interfaces.
Main Results:
- The solution structures demonstrated an asymmetrical organization of the PPARγ/RXRα heterodimer.
- DNA binding was identified as a critical factor in positioning the heterodimer, inducing this asymmetry.
- Asymmetrical binding of the TIF2 coactivator to the PPARγ/RXRα heterodimer was observed.
Conclusions:
- DNA plays a crucial role in dictating the structural conformation of the PPARγ/RXRα heterodimer.
- The observed asymmetry influences the interaction dynamics with coactivators such as TIF2.
- These findings provide insights into the molecular mechanisms underlying PPARγ-mediated gene regulation.
Related Concept Videos
Transducer Mechanism: Nuclear Receptors
About 48 different soluble family members of nuclear receptors are identified that can be divided into two main classes:
The Two-State Receptor Model
The binding affinity of a drug determines its interaction with one...
Assembly of Signaling Complexes
Interaction domains in cell signaling
Interaction domains recognize exposed features of their binding partners containing post-translationally modified sequences,...
G Protein-coupled Receptors
GPCRs are also called heptahelical, 7TM, or serpentine receptors, and consist of seven (H1-H7) transmembrane alpha-helices that span the bilayer to form a cylindrical core. The transmembrane helices are connected by three extracellular loops and three...
GPCR Desensitization
Transducer Mechanism: G Protein–Coupled Receptors
GPCRs are also called heptahelical, 7TM, or...
