Kyung Hoon Lee
Research Institute, Ballys Co. Ltd, Incheon 22219

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Inositol Hexakisphosphate (InsP₆) Induces Apoptosis via Caspase-Dependent Pathways: Molecular Docking Insights Ferry Sandra; Dewi Ranggaini; Johni Halim; Alfred Pakpahan; Visi Endah Pratitis; Kyung Hoon Lee
The Indonesian Biomedical Journal Vol 17, No 5 (2025)
Publisher : The Prodia Education and Research Institute (PERI)

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.18585/inabj.v17i5.3810

Abstract

BACKGROUND: Inositol hexakisphosphate (InsP₆) exhibits anticancer activity, especially by inducing intrinsic and extrinsic apoptotic pathways. However, there is still no molecular docking evidence that directly examines InsP₆ interactions with either upstream or downstream apoptotic regulators. Therefore, the current study was conducted to investigate the molecular docking of InsP₆ to caspases as upstream/downstream apoptotic regulators.METHODS: Ligands including InsP₆, InsP₅, InsP₄, histone deacetylase inhibitor, and caspase inhibitors were retrieved from PubChem, while target proteins (histone, caspase-8, caspase-2, and caspase-3) were obtained from the Protein Data Bank. Ligand toxicity was predicted using ProTox-3.0, and physicochemical properties were analyzed with SwissADME. Ligand structures were energy-minimized using PyRx with the Universal Force Field, while proteins were prepared by removing water molecules and non-essential heteroatoms in BIOVIA Discovery Studio. Molecular docking was conducted using CB-Dock 2.0, with binding poses selected based on the lowest Vina score, and ligand–protein interactions were visualized in Discovery Studio.RESULTS: Molecular docking results showed that InsP₆ bound strongly to histone, caspase-8, caspase-2, and caspase-3 with affinities comparable to reference inhibitors, forming multiple hydrogen bonds with key active-site residues. InsP₆, InsP₅, and InsP₄ exhibited several similar binding sites to caspase-3, with only minor differences in binding affinity.CONCLUSION: InsP₆ shows strong binding to histone, caspase-8, caspase-2, and caspase-3 based on in silico results, supporting its role in inducing both extrinsic and intrinsic apoptotic pathways. Taken together, InsP₆ could be a potential inducer of apoptosis in cancer cells.KEYWORDS: cancer, apoptosis, InsP₆, InsP₅, InsP₄, caspase, in silico, molecular docking
Potential Interaction of Propyl Gallate and Butylated Hydroxyanisole with EGFR–PI3K–Akt–mTOR Proteins in Oral and Gastrointestinal Carcinogenic Signaling Pathway: An in silico Molecular Docking Study Ferry Sandra; Visi Endah Pratitis; Dewi Priandini; Andrian Nova Fitri; Maria Leny Raiyon; Kyung Hoon Lee
The Indonesian Biomedical Journal Vol 18, No 4 (2026)
Publisher : The Prodia Education and Research Institute (PERI)

Show Abstract | Download Original | Original Source | Check in Google Scholar | DOI: 10.18585/inabj.v18i4.4329

Abstract

BACKGROUND: Synthetic food preservatives are widely used to improve food stability and shelf life, but prolonged exposure may contribute to oral and gastrointestinal carcinogenesis. Epidermal growth factor receptor (EGFR)–phosphoinositide 3-kinase (PI3K)–protein kinase B (Akt)–mammalian target of rapamycin (mTOR) axis plays a pivotal role in regulating tumor initiation and progression; however, the potential interactions with cancer-related signaling proteins remain poorly understood. This study computationally evaluated the predicted binding interactions of commonly used synthetic food preservatives with proteins using molecular docking.METHODS: Propyl gallate (PG), butylated hydroxyanisole (BHA), tertiary-butylhydroquinone (TBHQ), potassium sorbate (PS), sodium benzoate (SB), and sodium metabisulfite (SMB) were evaluated for physicochemical properties using SwissADME. Molecular docking with EGFR, PI3K, Akt-1, and mTOR was performed using CB-Dock 2.0. Predicted ligand–protein interactions were analyzed using BIOVIA Discovery Studio 2016 and root mean square fluctuation (RMSF) was evaluated using CABS-flex 3.0.RESULTS: PG and BHA exhibited the most predicted binding affinities among the investigated preservatives. PG showed the strongest interactions with EGFR (−6.1 kcal/mol), PI3K (−6.8 kcal/mol), and mTOR (−6.7 kcal/mol), whereas BHA demonstrated the highest affinity toward PI3K (−6.8 kcal/mol) and Akt-1 (−6.5 kcal/mol). These interactions were supported by multiple hydrogen bonds, hydrophobic interactions, and van der Waals contacts.CONCLUSION: PG and BHA exhibited the highest binding affinity toward proteins of the EGFR–PI3K–Akt–mTOR associated with oral and gastrointestinal carcinogenesis. These computational findings provide a basis for future experimental studies to determine the biological relevance of the predicted protein–ligand interactions under long-term dietary exposure.KEYWORDS: synthetic food preservatives, molecular docking, oral carcinogenesis, gastrointestinal carcinogenesis