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Published on: December 1, 2020
In silico identification of angiotensin-1 converting enzyme inhibitors using text mining and virtual screening
1Computational Biology and Molecular Simulations Laboratory, Department of Biophysics, School of Medicine, Bahcesehir University, Istanbul, Turkey.
Insights
Researchers identified novel indole-based compounds as potential inhibitors for angiotensin-converting enzyme (ACE) to manage hypertension. This study combined text mining and molecular modeling to discover new therapeutic agents for cardiovascular disease.
Area of Science:
- Medicinal Chemistry
- Computational Drug Discovery
- Cardiovascular Pharmacology
Background:
- Cardiovascular diseases (CVDs) are the leading global cause of mortality.
- Hypertension is a major risk factor for CVDs and renal diseases.
- Angiotensin-converting enzyme (ACE) is a key therapeutic target for hypertension management.
Purpose of the Study:
- To identify novel indole-based compounds as potential ACE inhibitors.
- To explore the therapeutic potential of indole derivatives in hypertension treatment.
- To leverage computational methods for drug discovery.
Main Methods:
- Utilized text mining to screen the Specs-SC database for indole-containing molecules.
- Employed quantitative structure-activity relationship (QSAR) models for toxicity and activity prediction.
- Performed molecular docking and molecular dynamics (MD) simulations to evaluate ACE inhibitory activity and binding affinity.
- Analyzed binding free energy, root mean square deviation, and root mean square fluctuations.
Main Results:
- Identified 3792 non-toxic indole-based compounds for further investigation.
- Screened compounds using molecular docking and 5-ns MD simulations.
- Selected top hit compounds for 100-ns MD simulations based on binding free energy.
- Characterized structural properties and fluctuations of potential inhibitors.
Conclusions:
- Successfully identified novel indole-based hit inhibitors for ACE-1 using integrated text mining and molecular modeling.
- The findings provide a foundation for developing new antihypertensive drugs.
- Computational approaches are effective in accelerating the discovery of novel drug candidates.
Abstract:
Cardiovascular diseases are the world's leading cause of death. Hypertension is an important risk factor for cardiovascular and renal diseases. Angiotensin-converting enzyme (ACE) can be a possible therapeutic target for managing angiotensin I conversion to angiotensin II and ultimately controlling hypertension. Indole is an significant fragment used in many medicines approved by FDA. For this reason, the molecules in their fragments containing" indol" keywords were taken from the Specs-SC (small compound) database. The predicted therapeutc activity values (TAV) of these compounds against hypertension were evaluated using binary models of QSAR by MetaCore/MetaDrug. For the 26 separate QSAR models of toxicity, molecules with measured TAV greater than 0.5 were used. 3792 non-toxic compounds were investigated by molecular docking study and molecular dynamics simulations for their ACE inhibitory activity. Glide standard precision (SP) of Maestro Molecular Modeling pocket was used to perform molecular docking. Short molecular dynamics (MD) simulations (5-ns) were carried out by initiating the top docking poses of selected 40 molecules. To quantitatively evaluate the predicted binding affinity of a screened compound, average MM/GBSA scores of screened ligands were calculated and based on their binding free energy values, hit compounds were identified for the long (100-ns) MD simulations. Root mean square deviation and root mean square fluctuations were also calculated to assess the structural characteristics and observe fluctuations of the 100-ns time scale. Thus, with the application of text mining and integrated molecular modeling we reported novel indole-based hit inhibitors for ACE-1.Communicated by Ramaswamy H. Sarma.
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