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The Caco-2 Cell Bioassay for Measurement of Food Iron Bioavailability
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Molecular Modeling-Based Delivery System Enhances Everolimus-Induced Apoptosis in Caco-2 Cells
Marwan Abdelmahmoud Abdelkarim Maki1, Palanirajan Vijayaraj Kumar1, Shiau-Chuen Cheah1
1Faculty of Pharmaceutical Sciences and Faculty of Medicine & Health Sciences, UCSI University, no. 1, Jalan Menara Gading, Taman Connaught, Cheras 56000 Kuala Lumpur, Malaysia.
Abstract:
Several studies have shown that the mammalian target of rapamycin (mTOR) inhibitor; everolimus (EV) improves patient survival in several types of cancer. However, the meaningful efficacy of EV as a single agent for the treatment of colorectal cancer (CRC) has failed to be proven in multiple clinical trials. Combination therapy is one of the options that could increase the efficacy and decrease the toxicity of the anticancer therapy. This study revealed that the β-cyclodextrin (β-CD):FGF7 complex has the potential to improve the antiproliferative effect of EV by preventing FGF receptor activation and by enhancing EV cellular uptake and intracellular retention. Molecular docking techniques were used to investigate the possible interaction between EV, β-CD, and FGF7. Molecular docking insights revealed that β-CD and EV are capable to form a stable inclusion complex with FGF at the molecular level. The aqueous solubility of the inclusion complex was increased (3.1 ± 0.23 μM) when compared to the aqueous solubility of pure EV (1.7 ± 0.16 μM). In addition, the in vitro cytotoxic activity of a FGF7:β-CD:EV complex on Caco-2 cell line was investigated using real-time xCELLigence technology. The FGF7:β-CD:EV complex has induced apoptosis of Caco-2 cells and shown higher cytotoxic activity than the parent drug EV. With the multitargets effect of β-CD:FGF7 and EV, the antiproliferative effect of EV was remarkably improved as the IC50 value of EV was reduced from 9.65 ± 1.42 to 1.87 ± 0.33 μM when compared to FGF7:β-CD:EV complex activity. In conclusion, the findings advance the understanding of the biological combinational effects of the β-CD:FGF7 complex and EV as an effective treatment to combat CRC.
Insights
Combining everolimus (EV) with a β-cyclodextrin (β-CD):FGF7 complex enhances its anti-cancer effects for colorectal cancer (CRC). This novel combination improves EV
Area of Science:
- Oncology
- Pharmacology
- Biochemistry
Background:
- Everolimus (EV), an mTOR inhibitor, shows limited efficacy as a single agent for colorectal cancer (CRC).
- Combination therapy offers a strategy to enhance anti-cancer efficacy and reduce toxicity.
- β-cyclodextrin (β-CD):FGF7 complex demonstrates potential in modulating EV's anti-cancer activity.
Purpose of the Study:
- To investigate the synergistic anti-proliferative effects of combining the β-cyclodextrin (β-CD):FGF7 complex with everolimus (EV) in colorectal cancer (CRC).
- To explore the molecular interactions and mechanisms underlying the enhanced efficacy of this combination therapy.
Main Methods:
- Molecular docking was employed to analyze interactions between EV, β-CD, and FGF7.
- Aqueous solubility of the inclusion complex was determined.
- In vitro cytotoxic activity of the FGF7:β-CD:EV complex was assessed on Caco-2 cells using xCELLigence technology.
Main Results:
- Molecular docking confirmed stable inclusion complex formation between β-CD, EV, and FGF7.
- The aqueous solubility of EV was significantly increased in the inclusion complex.
- The FGF7:β-CD:EV complex exhibited enhanced cytotoxic activity and induced apoptosis in Caco-2 cells, reducing EV's IC50 value.
Conclusions:
- The β-cyclodextrin (β-CD):FGF7 complex enhances the anti-proliferative effect of everolimus (EV) in colorectal cancer (CRC) by improving cellular uptake and retention.
- This combination therapy demonstrates a multitargeted approach with improved efficacy compared to EV alone.
- The findings support the potential of the FGF7:β-CD:EV complex as an effective treatment strategy for CRC.
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