Related Experiment Video
Updated: Jan 14, 2026

Transport Properties of Ibuprofen Encapsulated in Cyclodextrin Nanosponge Hydrogels: A Proton HR-MAS NMR Spectroscopy Study
Published on: August 15, 2016
Computational analysis to identify key factors governing drug encapsulation of cyclodextrin-based metal-organic
Ayumi Ohashi1, Kazuki Ohshima1, Shuji Ohsaki1
1Department of Chemical Engineering, Osaka Metropolitan University, 1-1 Gakuen-cho, Naka-ku, Sakai 599-8531 Osaka, Japan.
Abstract:
Metal-organic frameworks (MOFs) are porous materials formed by metal ions and organic ligands. MOFs are promising candidates for Drug Delivery Systems (DDS) because of their high porosity and tunable pore properties. Cyclodextrin-based MOFs (CD-MOFs) have gained attention as biocompatible MOFs for drug-delivery applications. This study investigates the encapsulation behavior of drug molecules in γ-CD-MOFs through computational simulations. The chemical potential of 5-fluorouracil (5FU) was calculated as - 40.13 kJ/mol using the Widom insertion method within the canonical Monte Carlo (CMC) simulation. The predicted drug-loaded amount was 128.84 mg-drug/g-MOF, which closely matched the experimental value of 143.0 mg-drug/g-MOF. Grand canonical Monte Carlo (GCMC) simulations of 26 types of drugs showed that drugs with molecular weights of approximately 300 exhibited the highest loading, primarily in hydrophobic pores. Multiple regression analysis was performed for the total and hydrophobic drug loaded amounts with 17 independent variables, including molecular weight, bounding box dimensions, and functional groups. The results revealed that halogen atoms and benzene rings positively influenced encapsulation efficiency, whereas hydrophobic functional groups enhanced drug loading in hydrophobic pores. Additionally, larger molecular sizes cause steric hindrance, thereby decreasing drug loading. These findings provide valuable insights for the optimization of MOF-based drug delivery systems.
Related Concept Videos
Factors Influencing Drug Absorption: Pharmaceutical Parameters
Factors Affecting Dissolution: Drug Permeability, Stability and Stereochemistry
Factors Affecting Dissolution: Polymorphism, Amorphism and Pseudopolymorphism
Some polymorphic crystals possess lower aqueous solubility than their amorphous counterparts, leading to incomplete absorption. For instance, the oral suspension of Chloramphenicol, which...
Biopharmaceutical Factors Influencing Drug Product Design: Overview
Factors Affecting Dissolution: Particle Size and Effective Surface Area
Bioavailability Enhancement: Drug Stability Enhancement and GI Retention

