Exploring the Potential of Plant-Based Nanotechnology in Cancer Immunotherapy: Benefits, Limitations, and Future Perspectives
- PMID: 38862749
- DOI: 10.1007/s12011-024-04266-6
Exploring the Potential of Plant-Based Nanotechnology in Cancer Immunotherapy: Benefits, Limitations, and Future Perspectives
Abstract
Reconceptualizing cancer immunotherapy can be improved if combined with plant production systems and nanotechnology. This review aims to contribute to the knowledge of plant use in nanomedicine and cancer immunotherapy. In the foreground, we outlined each of these approaches; nanomedicine, green synthesis, and immunotherapy. The benefits of plant-based nanoparticles in mending the immune systems were subsequently analyzed, with reference to the literature. The combining effects of biological and therapeutic properties of some phytochemicals and their derivatives, with targeted nanoparticles and selective immunotherapy, can enhance the delivery of drugs and antibodies, and induce antitumor immune responses, via activation of functions of neutrophils, lymphocyte cells, and natural killer cells, and macrophages, resulting in induced apoptosis and phagocytosis of tumor cells, which can improve designing immunotherapeutic strategies targeting cancer, with a larger spectrum compared to the current cytotoxic anticancer drugs commonly used in clinics. This study uncovers the mechanistic drivers of cancer immunoengineering in cancer therapy using plant-based nanomaterials, enhancing therapeutic benefits while minimizing toxic and side effects.
Keywords: Antibodies; Antitumor; Cancer therapy; Immune cells; Microenvironement; Nanomaterials; Plants.
© 2024. The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature.
Conflict of interest statement
Declarations. Ethical Approval: Not applicable Competing Interests: The authors declare no competing interests.
References
-
- Hu Z, Li J, Wei F et al (2013) Folic acid-conjugated graphene–ZnO nanohybrid for targeting photodynamic therapy under visible light irradiation. https://doi.org/10.1039/C3TB20849D
-
- Rehan F, Zhang M, Fang J, Greish K (2024) Therapeutic applications of nanomedicine: recent developments and future perspectives. Molecules 29(9):2073. https://doi.org/10.3390/molecules29092073 - DOI - PubMed - PMC
-
- Azizi S, Ahmad MB, Namvar F, Mohamad R (2013) Green biosynthesis and characterization of zinc oxide nanoparticles using brown marine macroalga Sargassum muticum aqueous extract. Mater Lett 116:275–277. https://doi.org/10.1016/j.matlet.2013.11.038 - DOI
-
- Mukherjee S, Kotcherlakota R, Haque S, Bhattacharya D, Kumar JM, Chakravarty S, PatraCR (2020) Improved delivery of doxorubicin using rationally designed PEGylated platinum nanoparticles for the treatment of melanoma. Mater Sci Eng C 2020(108):110375 - DOI
-
- Wu M, Liao Y, Guo D, Zhai M, Xia D, Zhang Z, Liu X, Huang Y (2024) Manganese-based nanomaterials in diagnostics and chemodynamic therapy of cancers: new development. RSC Adv. 14(21):14722–14741. https://doi.org/10.1039/d4ra01655f - DOI - PubMed - PMC
Publication types
MeSH terms
LinkOut - more resources
Full Text Sources
Medical
