Related Experiment Video
Updated: Nov 12, 2025

Detecting the Ligand-binding Domain Dimerization Activity of Estrogen Receptor Alpha Using the Mammalian Two-Hybrid Assay
Published on: December 19, 2018
Paradoxical androgen receptor regulation by small molecule enantiomers
Katherin Patsch1, Chao Liu2, Grzegorz Zapotoczny1
1Lawrence J. Ellison Institute for Transformative Medicine, University of Southern California, Los Angeles, CA 90064.
Abstract:
Small molecules that target the androgen receptor (AR) are the mainstay of therapy for lethal castration-resistant prostate cancer (CRPC), yet existing drugs lose their efficacy during continued treatment. This evolution of resistance is due to heterogenous mechanisms which include AR mutations causing the identical drug to activate instead of inhibit the receptor. Understanding in molecular detail the paradoxical phenomenon wherein an AR antagonist is transformed into an agonist by structural mutations in the target receptor is thus of paramount importance. Herein, we describe a reciprocal paradox: opposing antagonist and agonist AR regulation determined uniquely by enantiomeric forms of the same drug structure. The antiandrogen BMS-641988, which has (R)-chirality at C-5 encompasses a previously uncharacterized (S)-stereoisomer that is, surprisingly, a potent agonist of AR, as demonstrated by transcriptional assays supported by cell imaging studies. This duality was reproduced in a series of novel compounds derived from the BMS-641988 scaffold. Coupled with in silico modeling studies, the results inform an AR model that explains the switch from potent antagonist to high-affinity agonist in terms of C-5 substituent steric interactions with helix 12 of the ligand binding site. They imply strategies to overcome AR drug resistance and demonstrate that insufficient enantiopurity in this class of AR antagonist can confound efforts to correlate structure with function.
Insights
Enantiomers of anti-androgen drugs can paradoxically act as agonists, driving resistance in prostate cancer. Understanding this molecular switch is key to developing new therapies and overcoming treatment failure.
Area of Science:
- Medicinal Chemistry
- Molecular Biology
- Oncology
Background:
- Small molecule androgen receptor (AR) antagonists are crucial for treating castration-resistant prostate cancer (CRPC).
- Drug resistance develops through various mechanisms, including AR mutations that convert antagonists into agonists.
Purpose of the Study:
- To investigate the paradoxical transformation of AR antagonists into agonists due to structural mutations.
- To explore the enantiomeric duality of AR regulation by drug stereoisomers.
Main Methods:
- Synthesis and testing of novel AR antagonist enantiomers.
- Transcriptional assays and cell imaging to assess AR activity.
- In silico modeling of ligand-receptor interactions.
Main Results:
- The (S)-stereoisomer of BMS-641988 functions as a potent AR agonist, unlike its (R)-enantiomer.
- This enantiomeric switch was observed in related compounds, confirming the phenomenon.
- Molecular modeling revealed steric interactions at helix 12 of the AR ligand-binding site explain the agonist/antagonist switch.
Conclusions:
- Enantiomeric purity is critical for AR antagonist development; impurities can confound structure-activity relationship studies.
- The findings suggest strategies to overcome AR-mediated drug resistance in prostate cancer.
- A molecular model explains how C-5 substituent interactions dictate AR agonist or antagonist activity.
Related Concept Videos
Chirality in Nature
Properties of Enantiomers and Optical Activity
The Two-State Receptor Model
The binding affinity of a drug determines its interaction with...
Stereoisomers
Allosteric Regulation
Transducer Mechanism: Nuclear Receptors
About 48 different soluble family members of nuclear receptors are identified that can be divided into two main classes:

