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A Combined 3D Tissue Engineered In Vitro/In Silico Lung Tumor Model for Predicting Drug Effectiveness in Specific Mutational Backgrounds
Published on: April 6, 2016
Targeting potential receptor molecules in non-small cell lung cancer (NSCLC) using in silico approaches
C Kirubhanand1, J Merciline Leonora2, S Anitha3
1Department of Anatomy, All India Institute of Medical Sciences, Nagpur, Maharashtra, India.
Abstract:
Introduction: Non-Small Cell Lung Cancer is the most prevalent type of cancer in lung cancer. Chemotherapy, radiation therapy, and other conventional cancer treatments have a low success rate. Thus, creating new medications is essential to halt the spread of lung cancer. Methods: In this study bioactive nature of lochnericine against Non-Small Cell Lung Cancer (NSCLC) was analyzed using various computational approaches such as quantum chemical calculations, molecular docking, and molecular dynamic simulation. Furthermore, the MTT assay shows the anti-proliferation activity of lochnericine. Results and Discussion: Using Frontier Molecular Orbital (FMO), the calculated band gap energy value associated with bioactive compounds and the molecule's potential bioactivity is confirmed. The H38 hydrogen atom and O1 oxygen atom in the molecule are effectively electrophilic, and potential nucleophilic attack sites were confirmed through analysis of the Molecular electrostatic potential surface. Furthermore, the electrons within the molecule were delocalized, which confers bioactivity on the title molecule and was authorized through Mulliken atomic charge distribution analysis. A molecular docking study revealed that lochnericine inhibits non-small cell lung cancer-associated targeted protein. The lead molecule and targeted protein complex were stable during molecular dynamics simulation studies till the simulation period. Further, lochnericine demonstrated remarkable anti-proliferative and apoptotic features against A549 lung cancer cells. The current investigation powerfully suggests that lochnericine is a potential candidate for lung cancer.
Insights
Lochnericine shows potential as a novel lung cancer treatment. Computational analysis and cell assays confirm its ability to inhibit Non-Small Cell Lung Cancer (NSCLC) proliferation and induce apoptosis.
Area of Science:
- Computational Chemistry
- Pharmacology
- Oncology
Background:
- Non-Small Cell Lung Cancer (NSCLC) is the most common lung cancer subtype.
- Conventional treatments for NSCLC have limited efficacy, necessitating novel therapeutic agents.
Purpose of the Study:
- To investigate the potential of lochnericine as an anti-cancer agent against NSCLC.
- To analyze the bioactive properties of lochnericine using computational and experimental methods.
Main Methods:
- Quantum chemical calculations (Frontier Molecular Orbital, Molecular Electrostatic Potential, Mulliken atomic charge distribution).
- Molecular docking and molecular dynamics simulations.
- MTT assay to evaluate anti-proliferation activity against A549 lung cancer cells.
Main Results:
- Computational analyses confirmed lochnericine's bioactivity and potential electrophilic/nucleophilic sites.
- Molecular docking indicated lochnericine's ability to inhibit a key NSCLC-associated protein.
- Molecular dynamics simulations demonstrated the stability of the lochnericine-protein complex.
- Lochnericine exhibited significant anti-proliferative and apoptotic effects on A549 lung cancer cells.
Conclusions:
- Lochnericine possesses significant anti-cancer properties against NSCLC.
- The study supports lochnericine as a promising candidate for future lung cancer drug development.

