Exploring the Inclusion Complex of an Anticancer Drug with β-Cyclodextrin for Reducing Cytotoxicity Toward the Normal
Antara Sharma1,2, Pranish Bomzan3, Niloy Roy1
1Department of Chemistry, University of North Bengal, Darjeeling 734013, India.
Abstract:
The toxicity of any drug against normal cells is a health hazard for all humans. At present, health and disease researchers from all over the world are trying to synthesize designer drugs with diminished toxicity and side effects. The purpose of the present study is to enhance the bioavailability and biocompatibility of gemcitabine (GEM) by decreasing its toxicity and reducing deamination during drug delivery by incorporating it inside the hydrophobic cavity of β-cyclodextrin (β-CD) without affecting the drug ability of the parent compound (GEM). The newly synthesized inclusion complex (IC) was characterized by different physical and spectroscopic techniques, thereby confirming the successful incorporation of the GEM molecule into the nanocage of β-CD. The molecular docking study revealed the orientation of the GEM molecule into the β-CD cavity (-5.40 kcal/mol) to be stably posed for ligand binding. Photostability studies confirmed that the inclusion of GEM using β-CD could lead to better stabilization of GEM (≥96%) for further optical and clinical applications. IC (GEM-β-CD) and GEM exhibited effective antibacterial and antiproliferative activities without being metabolized in a dose-dependent manner. The CT-DNA analysis showed sufficiently strong IC (GEM-β-CD) binding (Ka = 8.1575 × 1010), and this interaction suggests that IC (GEM-β-CD) may possibly exert its biological effects by targeting nucleic acids in the host cell. The newly synthesized biologically active IC (GEM-β-CD), a derivative of GEM, has pharmaceutical development potentiality.
Insights
Researchers developed a new gemcitabine (GEM) and beta-cyclodextrin (β-CD) complex to reduce drug toxicity. This novel formulation enhances drug stability and maintains its potent antibacterial and antiproliferative activities for potential pharmaceutical use.
Area of Science:
- Pharmaceutical Chemistry
- Drug Delivery Systems
- Nanotechnology
Background:
- Drug toxicity and side effects pose significant health risks.
- Developing safer drug formulations with enhanced efficacy is a key research area.
- Gemcitabine (GEM) is an important chemotherapeutic agent with limitations in toxicity and stability.
Purpose of the Study:
- To enhance the bioavailability and biocompatibility of gemcitabine (GEM).
- To decrease GEM toxicity and reduce deamination during drug delivery.
- To achieve this by incorporating GEM within the hydrophobic cavity of beta-cyclodextrin (β-CD).
Main Methods:
- Synthesis of a gemcitabine-beta-cyclodextrin inclusion complex (IC).
- Characterization using physical and spectroscopic techniques.
- Molecular docking, photostability studies, antibacterial, antiproliferative, and CT-DNA binding assays.
Main Results:
- Successful incorporation of GEM into the β-CD nanocage confirmed.
- Molecular docking showed stable GEM orientation within β-CD (-5.40 kcal/mol).
- Enhanced photostability (≥96%) and maintained antibacterial/antiproliferative activities of GEM-β-CD.
- Strong CT-DNA binding (Ka = 8.1575 × 10^10) observed for the complex.
Conclusions:
- The synthesized GEM-β-CD inclusion complex demonstrates reduced toxicity and improved stability.
- The complex retains potent biological activities, potentially through nucleic acid targeting.
- This novel formulation shows significant potential for pharmaceutical development.
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