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Molecular basis of agonicity and antagonicity in the androgen receptor studied by molecular dynamics simulations
William H Bisson1, Ruben Abagyan, Claudio N Cavasotto
1The Scripps Research Institute, 10550 North Torrey Pines Road, La Jolla, CA 92037, USA.
Abstract:
Treatment of prostate cancer patients with antiandrogens is initially successful, though the therapy often becomes refractory over the time. This mechanism is not fully understood, but the presence of androgen receptor (AR) mutant forms which are activated by antiandrogens and other endogenous ligands, and overexpression of the receptor have been suggested. In an attempt to explain the molecular basis for agonicity and antagonicity in the androgen receptor, and the changes on biological activity of subtle modifications at the ligand and receptor (mutations) level, molecular dynamics simulations were performed on the androgen receptor wild type (WT), and T877A and W741 mutant forms, complexed with several non-steroidal androgens. The stabilizing role of residues from helices 3, 5, 11 and 12 was observed in non-steroidal androgens R-3, S-1, and R-bicalutamide and hydroxyflutamide in resistant mutations. In the AR WT antiandrogen R-bicalutamide complex, destabilization of M895 by both W741 and the sulfonyl linkage of the ligand may be responsible for reported antagonism. Changes in the ligand or mutations alleviating this effect were observed to stabilize the receptor in the active conformation, thus developing resistance to R-bicalutamide. The results presented provide a plausible explanation for the molecular basis of agonicity and antagonicity in the androgen receptor, and complement previous studies using static crystal structures, incorporating for the first time protein dynamics into the analysis. Thus, our results provide a valuable framework for the structure-based design of improved antiandrogens.
Insights
Androgen receptor (AR) mutations can cause resistance to antiandrogen therapy in prostate cancer. Molecular dynamics simulations reveal how AR mutations and ligand interactions stabilize the receptor, leading to treatment failure.
Area of Science:
- Molecular biology
- Computational chemistry
- Oncology
Background:
- Antiandrogen therapy is a common treatment for prostate cancer.
- Therapy resistance develops due to alterations in the androgen receptor (AR).
- Mutant AR forms can be activated by antiandrogens, leading to treatment failure.
Purpose of the Study:
- To investigate the molecular basis of androgen receptor (AR) agonism and antagonism.
- To understand how ligand and AR mutations affect antiandrogen drug efficacy.
- To explore the role of protein dynamics in AR-mediated drug resistance.
Main Methods:
- Molecular dynamics simulations were performed on wild-type (WT) AR and T877A/W741 mutant forms.
- Simulations included complexes with various non-steroidal antiandrogens.
- Analysis focused on receptor-ligand interactions and conformational stability.
Main Results:
- Specific AR residues stabilize the receptor in the presence of certain antiandrogens, particularly in resistant mutations.
- Destabilization of key residues in the AR ligand-binding domain by W741 mutation and R-bicalutamide contributes to antagonism.
- Mutations or ligand modifications that reduce this destabilizing effect promote a stable, active AR conformation, causing resistance.
Conclusions:
- The study provides a dynamic molecular explanation for AR agonism and antagonism.
- Protein dynamics are crucial for understanding AR function and drug resistance mechanisms.
- Findings offer a framework for designing next-generation antiandrogens to overcome resistance.
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