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Updated: Apr 29, 2026

Detecting the Ligand-binding Domain Dimerization Activity of Estrogen Receptor Alpha Using the Mammalian Two-Hybrid Assay
Published on: December 19, 2018
Drugging the intrinsically disordered transactivation domain of androgen receptor
Jon K Obst1, Carmen A Banuelos1, Kunzhong Jian1,2
1Canada's Michael Smith Genome Sciences Centre at BC Cancer, Vancouver, BC, Canada.
Abstract:
Androgen receptor (AR) is a therapeutic target for prostate cancer. Despite effectively targeting its folded ligand-binding domain (LBD), resistance ultimately develops by mechanisms involving reactivation of AR signaling. These mechanisms include expression of constitutively active AR that lacks LBD and fueled the discovery of inhibitors that bind to AR's N-terminal intrinsically disordered transactivation domain (TAD). AR-TAD inhibitors (ARTADIs) are unique due to the paucity of small molecule inhibitors that bind directly to intrinsically disordered TADs, which have historically been considered undruggable. Leveraging our library of ARTADIs using cultured prostate cancer cells and multiple xenograft models, we reveal that small alterations in the chemical scaffold impact selectivity and potency within the AR-transcriptome; impacting signal transduction pathways involved in protumorigenic mechanisms. Mechanistically, these compounds differentially disrupt interactions between full-length AR or splice-variant AR-V7, and co-regulators, as revealed by rapid immunoprecipitation mass spectrometry of endogenous protein and the proximity ligation assay. Biophysically, several ARTADIs displayed exceptionally strong binding affinities that were better than, or were comparable to the LBD-inhibitor enzalutamide, with dissociation constants in the picomolar to low-nanomolar range as determined by surface plasmon resonance and microscale thermophoresis. MS/MS analysis revealed covalent binding to cysteine 129. In vivo, ARTADIs outperformed enzalutamide against prostate cancer xenografts in the presence of androgens, underscoring the therapeutic potential of targeting alternative AR domains. These findings support the feasibility - but also highlight the complexity - of developing drugs against an intrinsically disordered TAD impacted by multivalent binding interactions that may not occur in a stepwise fashion.
Insights
New androgen receptor-transactivation domain inhibitors (ARTADIs) show promise for prostate cancer treatment, effectively targeting resistant forms of the receptor and outperforming existing therapies in preclinical models.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Androgen receptor (AR) is a key therapeutic target in prostate cancer.
- Resistance to current AR-targeted therapies often involves AR signaling reactivation.
- The intrinsically disordered transactivation domain (TAD) of AR presents a challenging but crucial target.
Purpose of the Study:
- To investigate the efficacy and mechanisms of novel AR-TAD inhibitors (ARTADIs) in prostate cancer.
- To evaluate ARTADIs against both full-length AR and resistance-mediating splice variants like AR-V7.
- To compare ARTADIs with established therapies like enzalutamide in preclinical models.
Main Methods:
- Utilized cultured prostate cancer cells and xenograft models.
- Employed rapid immunoprecipitation mass spectrometry and proximity ligation assay to study protein interactions.
- Assessed binding kinetics using surface plasmon resonance and microscale thermophoresis.
- Performed MS/MS analysis to identify binding sites.
Main Results:
- ARTADIs demonstrated potent inhibition of AR signaling by disrupting AR-co-regulator interactions.
- Compounds showed high binding affinity, with some comparable or superior to enzalutamide.
- Covalent binding to cysteine 129 was identified for several ARTADIs.
- In vivo studies showed ARTADIs outperformed enzalutamide in reducing tumor growth.
Conclusions:
- ARTADIs represent a promising new class of drugs targeting the AR-TAD in prostate cancer.
- These inhibitors are effective against both standard and resistant forms of AR.
- Targeting intrinsically disordered domains like AR-TAD is feasible and offers therapeutic potential, despite inherent complexities.
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