Magnetically Directed Enzyme/Prodrug Prostate Cancer Therapy Based on β-Glucosidase/Amygdalin
Jie Zhou1,2, Jing Hou1,2, Jun Rao2,3
1Department of Urology, Hubei Provincial Hospital of Traditional Chinese Medicine, Wuhan, Hubei, People's Republic of China.
Background:
β-Glucosidase (β-Glu) can activate amygdalin to kill prostate cancer cells, but the poor specificity of this killing effect may cause severe general toxicity in vivo, limiting the practical clinical application of this approach.
Materials And Methods:
In this study, starch-coated magnetic nanoparticles (MNPs) were successively conjugated with β-Glu and polyethylene glycol (PEG) by chemical coupling methods. Cell experiments were used to confirm the effects of immobilized β-Glu on amygdalin-mediated prostate cancer cell death in vitro. Subcutaneous xenograft models were used to carry out the targeting experiment and magnetically directed enzyme/prodrug therapy (MDEPT) experiment in vivo.
Results:
Immobilized β-Glu activated amygdalin-mediated prostate cancer cell death. Tumor-targeting studies showed that PEG modification increased the accumulation of β-Glu-loaded nanoparticles in targeted tumor tissue subjected to an external magnetic field and decreased the accumulation of the nanoparticles in the liver and spleen. Based on an enzyme activity of up to 134.89 ± 14.18mU/g tissue in the targeted tumor tissue, PEG-β-Glu-MNP/amygdalin combination therapy achieved targeted activation of amygdalin and tumor growth inhibition in C57BL/6 mice bearing RM1 xenografts. Safety evaluations showed that this strategy had some impact on liver and heart function but did not cause obvious organ damage.
Conclusion:
All findings indicate that this magnetically directed enzyme/prodrug therapy strategy has the potential to become a promising new approach for targeted therapy of prostate cancer.
Insights
This study developed magnetically directed enzyme/prodrug therapy using starch-coated magnetic nanoparticles conjugated with β-glucosidase (β-Glu) and polyethylene glycol (PEG). This targeted approach effectively killed prostate cancer cells in vivo with reduced toxicity.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Therapy
Background:
- β-Glucosidase (β-Glu) activates amygdalin to kill prostate cancer cells.
- Poor specificity of β-Glu limits its clinical use due to toxicity.
Purpose of the Study:
- To develop a targeted enzyme/prodrug therapy for prostate cancer.
- To enhance specificity and reduce toxicity of β-Glu-mediated cancer cell death.
Main Methods:
- Starch-coated magnetic nanoparticles (MNPs) were conjugated with β-Glu and polyethylene glycol (PEG).
- In vitro cell experiments confirmed amygdalin-mediated prostate cancer cell death.
- In vivo studies utilized subcutaneous xenograft models for targeting and magnetically directed enzyme/prodrug therapy (MDEPT).
Main Results:
- Immobilized β-Glu successfully activated amygdalin for prostate cancer cell death.
- PEG modification enhanced nanoparticle accumulation in tumors under magnetic fields, reducing off-target accumulation in liver and spleen.
- Combination therapy in mice achieved targeted amygdalin activation and inhibited tumor growth with manageable impact on liver and heart function.
Conclusions:
- Magnetically directed enzyme/prodrug therapy shows promise for targeted prostate cancer treatment.
- This strategy offers improved specificity and reduced systemic toxicity compared to free β-Glu.
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