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Exploration of Zinc Oxide Nanoparticles as a Multitarget and Multifunctional Anticancer Nanomedicine
Jiao Wang1, Jung Seok Lee2, Dongin Kim1
1Department of Pharmaceutical Sciences, Irma Lerma Rangel College of Pharmacy, Texas A&M University Health Science Center , Kingsville, Texas 78363, United States.
Abstract:
Because of the complexity of cancer, an ideal anticancer strategy is better to target both cancer cells and the tumor microenvironment. In this study, for the first time, we demonstrated that zinc oxide nanoparticles (ZnO NPs) were able to target multiple cell types of cancer, including cancer cells, cancer stem cells (CSCs), and macrophages, and simultaneously perform several key functions, including inhibition of cancer proliferation, sensitization of drug-resistant cancer, prevention of cancer recurrence and metastasis, and resuscitation of cancer immunosurveillance. As a nanocarrier, the chemotherapy drug, doxorubicin (Dox), could be loaded to ZnO NPs and the Dox-loaded ZnO NPs (ZnO/Dox) possessed excellent physicochemical and pH-responsive drug release properties. ZnO/Dox could be effectively internalized by both drug-sensitive and multidrug resistant (MDR) cancer cells and penetrate more efficiently through three-dimensional (3D) cancer cell spheroids compared with free Dox. As a cytotoxic agent, ZnO NPs were more efficient to kill MDR cancer cells. Interestingly, neither ZnO nor Dox showed high cytotoxicity in the 3D cancer cell spheroids, whereas ZnO/Dox showed remarkable synergistic anticancer effects. More importantly, we demonstrated that ZnO NPs could effectively downregulate CD44, a key CSC surface marker, and decrease the stemness of CSCs, leading to the sensitization of the Dox treatment, inhibition of the cancer cell adhesion and migration, and prevention of the tumor (3D cancer cell spheroid) formation. As an immunomodulator, ZnO NPs could protect macrophages from the Dox-induced toxicity and boost the Dox-induced macrophage polarization toward an M1-like phenotype. The macrophage-conditioned medium could promote the cancer cell apoptosis in both cancer cell monolayers and 3D spheroids. The findings in this study indicated that ZnO NPs were a multifunctional and multitarget nanocarrier and nanomedicine that would have more profound effects on cancer treatment.
Insights
Zinc oxide nanoparticles (ZnO NPs) offer a novel, multi-target cancer therapy. These nanoparticles inhibit cancer growth, overcome drug resistance, and re-engage the immune system for enhanced treatment outcomes.
Area of Science:
- Nanomedicine
- Cancer Biology
- Immunology
Background:
- Cancer complexity necessitates strategies targeting both cancer cells and the tumor microenvironment.
- Existing therapies often face challenges with drug resistance, recurrence, and metastasis.
Purpose of the Study:
- To investigate zinc oxide nanoparticles (ZnO NPs) as a multifunctional agent for comprehensive cancer treatment.
- To evaluate ZnO NPs' ability to target cancer cells, cancer stem cells (CSCs), and macrophages.
- To assess the efficacy of doxorubicin-loaded ZnO NPs (ZnO/Dox) for enhanced drug delivery and synergistic effects.
Main Methods:
- Loading doxorubicin (Dox) onto ZnO NPs to create ZnO/Dox nanoparticles with pH-responsive release.
- Evaluating the cellular uptake and penetration of ZnO/Dox in drug-sensitive, multidrug-resistant (MDR) cancer cells, and 3D cancer spheroids.
- Assessing the effects of ZnO NPs on CSC markers (CD44), cancer cell proliferation, migration, and stemness.
- Investigating ZnO NPs' immunomodulatory effects on macrophages, including protection from toxicity and M1-like polarization.
Main Results:
- ZnO/Dox demonstrated superior internalization and penetration in cancer models compared to free Dox.
- ZnO NPs exhibited potent cytotoxicity against MDR cancer cells and synergistic effects when combined with Dox in 3D spheroids.
- ZnO NPs effectively reduced CSC stemness by downregulating CD44, inhibiting cancer cell adhesion, migration, and spheroid formation.
- ZnO NPs protected macrophages from Dox toxicity and promoted M1-like polarization, with conditioned medium inducing cancer cell apoptosis.
Conclusions:
- ZnO NPs function as a versatile nanocarrier and nanomedicine with multitargeting capabilities.
- ZnO/Dox exhibits significant synergistic anticancer effects, overcoming drug resistance and preventing recurrence/metastasis.
- ZnO NPs possess immunomodulatory properties that enhance the overall anti-tumor immune response.
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