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Updated: Oct 6, 2025

Synthesis of Aptamer-PEI-g-PEG Modified Gold Nanoparticles Loaded with Doxorubicin for Targeted Drug Delivery
Published on: June 23, 2020
Gold Nanorods Functionalized with Cathepsin B Targeting Peptide and Doxorubicin for Combinatorial Therapy against
Xiaomin Zhi1, Yuqian Jiang1, Linlin Xie1
1School of Pharmaceutics, Capital Medical University, Beijing 100069, China.
Abstract:
Multidrug resistance (MDR) and adverse effects of chemotherapeutic agents are severe issues in clinical cancer treatment. Due to the dysregulation of enzymes in the cancer cells, enzyme-responsive drug delivery systems (DDSs) have been considered as a viable technology for cancer chemotherapy. In the present work, doxorubicin (DOX) is visible after leaving from AuNR-LAX. After treatment with AuNR-LAX, the drug resistance index of DOX-resistant MCF-7/ADR cells was reduced from extremely high 955.0 to 1.7, implying high potential of AuNR-LAX in the MDR phenotype cancer treatment. In addition, the cellular viability of both MCF-7 and MCF-7/ADR cells decreased from 50% to 80% after treatment with AuNR-LAX along (equivalent DOX concentration = 2.3 μg/mL, Au concentration = 30 μg/mL) to below 10% after AuNR-LAX treatment plus radiation of 808 nm, due to the NIR photothermal effect of AuNRs. Human bronchial epithelial cell line 16HBE was chosen to evaluate the adverse effect of AuNR-LAX on the normal cells. At the low concentration, the cytotoxicity of LAX and AuNR-LAX is comparable for breast cancer cell MCF-7 and normal cell 16HBE. It is noted that, at high concentration (with equivalent DOX concentration = 13.1 μg/mL, Au concentration = 167.7 μg/mL), the cellular viability of 16HBE cells is over 50%, whereas that of MCF-7 cancer cells is close to 0, implying the potential of AuNR-LAX in reducing the adverse effects of DOX against normal cells/tissues. Overall, AuNR-LAX showed high potential in overcoming MDR and alleviating adverse effect on normal cells.
Insights
AuNR-LAX significantly reduces multidrug resistance in cancer cells and shows potential in alleviating chemotherapy
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Therapy
Background:
- Multidrug resistance (MDR) and chemotherapy's adverse effects are major challenges in cancer treatment.
- Enzyme-responsive drug delivery systems (DDSs) offer a promising approach for targeted cancer chemotherapy.
Purpose of the Study:
- To evaluate the efficacy of AuNR-LAX as an enzyme-responsive DDS for overcoming MDR and reducing adverse effects.
- To assess the drug resistance index and cellular viability of cancer cells and normal cells treated with AuNR-LAX.
Main Methods:
- AuNR-LAX was synthesized and characterized.
- Doxorubicin (DOX)-resistant MCF-7/ADR cells and normal 16HBE cells were used for in vitro studies.
- Drug resistance index, cellular viability, and photothermal effects were evaluated.
- Near-infrared (NIR) radiation at 808 nm was applied to assess the photothermal effect.
Main Results:
- AuNR-LAX treatment reduced the drug resistance index of MCF-7/ADR cells from 955.0 to 1.7.
- AuNR-LAX combined with NIR radiation significantly decreased cancer cell viability due to photothermal effects.
- AuNR-LAX demonstrated reduced cytotoxicity towards normal 16HBE cells compared to cancer cells at high concentrations.
Conclusions:
- AuNR-LAX shows high potential in overcoming multidrug resistance in cancer.
- AuNR-LAX may help alleviate the adverse effects of doxorubicin on normal cells and tissues.
- The developed DDS holds promise for improved cancer chemotherapy strategies.
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