Related Experiment Video
Updated: Jul 15, 2025

Evaluating the Effectiveness of Cancer Drug Sensitization In Vitro and In Vivo
Published on: February 6, 2015
In-silico and in-vitro study reveals ziprasidone as a potential aromatase inhibitor against breast carcinoma
Ankita Sahu1, Shaban Ahmad2, Khalid Imtiyaz3
1Tumour Biology Lab, ICMR-National Institute of Pathology, New Delhi, 110029, India.
Abstract:
Aromatase enzyme plays a fundamental role in the development of estrogen receptors, and due to this functionality, the enzyme has gained significant attention as a therapeutic for reproductive disorders and cancer diseases. The currently employed aromatase inhibitors have severe side effects whereas our novel aromatase inhibitor is more selective and less toxic, therefore has greater potential to be developed as a drug. The research framework of this study is to identify a potent inhibitor for the aromatase target by profiling molecular descriptors of the ligand and to find a functional pocket in the target by docking and MD simulations. For assessing cellular and metabolic activities as indicators of cell viability and cytotoxicity, in-vitro studies were performed by using the colorimetric MTT assay. Aromatase activities were determined by a fluorometric method. Cell morphology was assessed by phase-contrast light microscopy. Flow cytometry and Annexin V-FITC/PI staining assay determined cell cycle distribution and apoptosis. This study reports that CHEMBL708 (Ziprasidone) is the most promising compound that showed excellent aromatase inhibitory activity. By using better drug design methods and experimental studies, our study identified a novel compound that could be effective as a high-potential drug candidate against aromatase enzyme. We conclude that the compound ziprasidone effectively blocks the cell cycle at the G1-S phase and induces cancer cell death. Further, in-vivo studies are vital for developing ziprasidone as an anticancer agent. Lastly, our research outcomes based on the results of the in-silico experiments may pave the way for identifying effective drug candidates for therapeutic use in breast cancer.
Insights
Ziprasidone (CHEMBL708) is a novel, less toxic aromatase inhibitor with high potential for cancer therapy. This compound effectively blocks cell cycle progression and induces cancer cell death, warranting further in-vivo studies.
Area of Science:
- Biochemistry
- Pharmacology
- Computational Chemistry
Background:
- Aromatase enzyme is crucial for estrogen receptor development, making it a therapeutic target for reproductive disorders and cancers.
- Existing aromatase inhibitors exhibit severe side effects, necessitating the development of safer alternatives.
- Novel inhibitors offer improved selectivity and reduced toxicity, presenting greater therapeutic potential.
Purpose of the Study:
- To identify a potent aromatase inhibitor by analyzing molecular descriptors.
- To investigate the functional pocket of the aromatase target using molecular docking and simulations.
- To evaluate the efficacy and safety of a novel inhibitor candidate.
Main Methods:
- In-silico methods: molecular descriptor profiling, molecular docking, and molecular dynamics (MD) simulations.
- In-vitro studies: colorimetric MTT assay for cell viability and cytotoxicity, fluorometric assay for aromatase activity.
- Cellular analysis: phase-contrast microscopy for morphology, flow cytometry with Annexin V-FITC/PI staining for cell cycle and apoptosis.
Main Results:
- CHEMBL708 (Ziprasidone) demonstrated excellent aromatase inhibitory activity.
- Ziprasidone was identified as a promising drug candidate with high potential.
- In-vitro studies confirmed Ziprasidone's ability to block cell cycle at G1-S phase and induce cancer cell death.
Conclusions:
- Ziprasidone is a potent aromatase inhibitor with potential as an anticancer agent.
- Further in-vivo studies are essential to validate Ziprasidone's efficacy and safety for therapeutic use.
- This research provides a foundation for developing effective drug candidates targeting aromatase, particularly for breast cancer treatment.
More Related Videos
11:13Author Spotlight: Exploring Salidroside's Molecular Mechanisms in Breast Cancer Treatment
Published on: June 9, 2023
08:48An In Vitro Dormancy Model of Estrogen-sensitive Breast Cancer in the Bone Marrow: A Tool for Molecular Mechanism Studies and Hypothesis Generation
Published on: June 30, 2015