Molecular Docking and ADMET-Based Screening of Natural Plant Hormones as Potential MMP9 Inhibitors in Cervical Cancer
DOI:
https://doi.org/10.31580/pjmls.v9i2.3428Keywords:
Cervical cancer, MMP9, Molecular docking, Phytochemicals, Luteolin, ADMET analysisAbstract
Cervical cancer is a significant health problem due to late diagnosis and poor treatment, resulting in an increasing death rate each year. This malignancy is caused by a variety of hereditary variables, and matrix metalloproteinase-9 (MMP9) is a crucial protein that contributes to extracellular matrix breakdown, tumor invasion, and metastasis, making it a possible target for therapeutic drugs. This research involved an in silico study to identify essential plant hormones as natural inhibitors against MMP9. This protein's FASTA sequence was obtained from the NCBI database, and GOR I, AlphaFold, and Procheck were used to perform additional structure prediction analysis. ExPASy ProtParam and TMHMM tools were employed to examine physicochemical and transmembrane properties of the protein. The strongest anti-cancer drugs were identified through molecular docking using PyRx and CB Dock2, which were downloaded from the PubChem database. Among these substances, luteolin, curcumin, quercetin, resveratrol, and epigallocatechin gallate, luteolin had the strongest hydrogen bond interactions with the target protein and the highest binding energy of -9.5 kcal/mol. Luteolin's pharmacokinetic characteristics were examined using further ADMET analysis, which showed that it is a promising therapeutic candidate. Finally, a safety assessment was conducted using Protox II for toxicity analysis. Consequently, luteolin has demonstrated an effective natural inhibitor of MMP9, warranting further experimental validation for its potential application in the management of cervical cancer.
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