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Updated: May 31, 2026

Incorporating Target Protein Structure Flexibility and Dynamics in Computational Drug Discovery Using Ensemble-Based Docking Analysis
Published on: June 20, 2025
Insight into the binding interactions of CYP450 aromatase inhibitors with their target enzyme: a combined molecular
Roberta Galeazzi1, Luca Massaccesi
1Dipartimento I.S.A.C, Università Politecnica delle Marche, via Brecce Bianche, 60131 Ancona, Italy. r.galeazzi@univpm.it
Abstract:
CYP450 aromatase catalyzes the terminal and rate-determining step in estrogen synthesis, the aromatization of androgens, and its inhibition is an efficient approach to treating estrogen-dependent breast cancer. Insight into the molecular basis of the interaction at the catalytic site between CYP450 aromatase inhibitors and the enzyme itself is required in order to design new and more active compounds. Hence, a combined molecular docking-molecular dynamics study was carried out to obtain the structure of the lowest energy association complexes of aromatase with some third-generation aromatase inhibitors (AIs) and with other novel synthesized letrozole-derived compounds which showed high in vitro activity. The results obtained clearly demonstrate the role of the pharmacophore groups present in the azaheterocyclic inhibitors (NSAIs)-namely the triazolic ring and highly functionalized aromatic moieties carrying H-bond donor or acceptor groups. In particular, it was pointed out that all of them can contribute to inhibition activity by interacting with residues of the catalytic cleft, but the amino acids involved are different for each compound, even if they belong to the same class. Furthermore, the azaheterocyclic group strongly coordinates with the Fe(II) of heme cysteinate in the most active NSAI complexes, while it prefers to adopt another orientation in less active ones.
Insights
This study reveals how aromatase inhibitors bind to the enzyme, highlighting the role of specific chemical groups in their effectiveness against estrogen-dependent breast cancer.
Area of Science:
- Biochemistry
- Medicinal Chemistry
- Computational Biology
Background:
- CYP450 aromatase is crucial for estrogen synthesis and a target for breast cancer therapy.
- Understanding inhibitor-enzyme interactions is key to designing more potent drugs.
Purpose of the Study:
- To elucidate the molecular interactions between aromatase and novel inhibitors.
- To guide the design of improved aromatase inhibitors for breast cancer treatment.
Main Methods:
- Combined molecular docking and molecular dynamics simulations.
- Analysis of binding modes and interactions of third-generation aromatase inhibitors and letrozole derivatives.
Main Results:
- Pharmacophore groups, including triazolic rings and functionalized aromatic moieties, are essential for inhibition.
- Inhibitors interact with catalytic cleft residues, with variations among compounds.
- Active inhibitors show strong coordination of the azaheterocyclic group with heme Fe(II).
Conclusions:
- Molecular interactions explain the varying efficacy of aromatase inhibitors.
- The study provides a basis for rational drug design of novel anti-cancer agents.
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