Related Experiment Video
Updated: Nov 4, 2025

Detecting the Ligand-binding Domain Dimerization Activity of Estrogen Receptor Alpha Using the Mammalian Two-Hybrid Assay
Published on: December 19, 2018
Defining the Energetic Basis for a Conformational Switch Mediating Ligand-Independent Activation of Mutant Estrogen
Christopher G Mayne1, Weiyi Toy2, Kathryn E Carlson3
1Department of Biochemistry, University of Illinois at Urbana-Champaign, NIH Center for Macromolecular Modeling and Bioinformatics, Beckman Institute for Advanced Science and Technology, Urbana, Illinois.
Abstract:
Although most primary estrogen receptor (ER)-positive breast cancers respond well to endocrine therapies, many relapse later as metastatic disease due to endocrine therapy resistance. Over one third of these are associated with mutations in the ligand-binding domain (LBD) that activate the receptor independent of ligand. We have used an array of advanced computational techniques rooted in molecular dynamics simulations, in concert with and validated by experiments, to characterize the molecular mechanisms by which specific acquired somatic point mutations give rise to ER constitutive activation. By comparing structural and energetic features of constitutively active mutants and ligand-bound forms of ER-LBD with unliganded wild-type (WT) ER, we characterize a spring force originating from strain in the Helix 11-12 loop of WT-ER, opposing folding of Helix 12 into the active conformation and keeping WT-ER off and disordered, with the ligand-binding pocket open for rapid ligand binding. We quantify ways in which this spring force is abrogated by activating mutations that latch (Y537S) or relax (D538G) the folded form of the loop, enabling formation of the active conformation without ligand binding. We also identify a new ligand-mediated hydrogen-bonding network that stabilizes the active, ligand-bound conformation of WT-ER LBD, and similarly stabilizes the active conformation of the ER mutants in the hormone-free state. IMPLICATIONS: Our investigations provide deep insight into the energetic basis for the structural mechanisms of receptor activation through mutation, exemplified here with ER in endocrine-resistant metastatic breast cancers, with potential application to other dysregulated receptor signaling due to driver mutations.
Insights
Activating mutations in estrogen receptor (ER) cause endocrine therapy resistance in metastatic breast cancer by disrupting a stabilizing "spring force." These mutations enable the receptor to remain in an active state, driving cancer growth without hormone binding.
Area of Science:
- Molecular Biology
- Computational Biophysics
- Oncology
Background:
- Estrogen receptor (ER)-positive breast cancers often develop resistance to endocrine therapies, leading to metastatic disease.
- Mutations in the ER ligand-binding domain (LBD) are found in over a third of these resistant cases, causing constitutive receptor activation.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying ER constitutive activation caused by specific somatic mutations.
- To understand the structural and energetic basis of endocrine therapy resistance in ER-positive breast cancer.
Main Methods:
- Advanced computational techniques, including molecular dynamics simulations.
- Experimental validation of computational findings.
- Comparative analysis of wild-type ER-LBD (unliganded, ligand-bound) and constitutively active mutants.
Main Results:
- A strain-induced 'spring force' in the Helix 11-12 loop of wild-type ER normally opposes Helix 12 folding, maintaining an inactive state.
- Activating mutations (e.g., Y537S, D538G) abrogate this spring force, stabilizing the active conformation of ER-LBD in a ligand-independent manner.
- A novel ligand-mediated hydrogen-bonding network stabilizes the active conformation of both wild-type and mutant ER-LBD.
Conclusions:
- The study reveals the energetic and structural basis for ligand-independent ER activation by specific mutations, driving endocrine therapy resistance.
- These findings offer insights into receptor signaling dysregulation by driver mutations, with potential therapeutic implications for metastatic breast cancer.
Related Concept Videos
Mitogens and the Cell Cycle
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...
Signal Transduction: Overview
Typically, signal transduction involves three...
Transducer Mechanism: Enzyme-Linked Receptors
Major types that are helpful drug targets include:
Secondary Messengers in Hormone Action
Many hormones bind to transmembrane G protein-coupled receptors that connect to regulatory G proteins. These G proteins can then activate enzymes such as adenylyl cyclase or phospholipase C. Adenylyl cyclase converts ATP to cAMP, activating...

