Translational Peptide-associated Nanosystems: Promising Role as Cancer Vaccines
Eva Zupančič, Carina Peres, Ana I Matos
1Research Institute for Medicines (iMed.ULisboa), Faculty of Pharmacy, Universidade de Lisboa, P.O. Box: 1649-003, Lisbon, Portugal. hflorindo@ff.ulisboa.pt.
Abstract:
Cancer is a heterogeneous disease that results from a multi-step process, being characterized by uncontrolled proliferation, invasion and metastasis. The understanding that tumor cells can be recognized by host immune cells has highlighted the potential advantages of using vaccination purposes to eliminate cancer cells, while avoiding severe side effects associated to conventional cancer treatments. Interesting outcomes have been obtained with the new identified tumor associated antigens (TAAs), including recombinant proteins and peptides. However, these molecules are weakly immunogenic, demanding the concomitant use of adjuvants to boost and achieve a strong tumor-specific immune response. Different classes of nanosystems have been used to protect and deliver several vaccine components. In vitro and preclinical studies have emphasized their promising role to attain a prolonged eradication of cancer cells, including metastasis. However, some studies support the co-entrapment of multiple adjuvants and TAAs within a single particulate carrier, while others indicate that stronger immune responses were obtained using a mixture of nanocarriers entrapping different combinations of TAAs and adjuvants. These apparently contradictory results may be related to nanocarrier physicochemical properties, which have a profound impact on their interaction with targeted cells and consequent biological effects. This review discusses the application of nanoscale systems as cancer vaccines, highlighting the particular characteristics of tumor biology and immunology that have been used to guide the design of these nanodelivery tools. We also aim to explore the major weaknesses that have prevented their wide application in the clinic to overcome the delivery, efficacy and safety issues associated to biological entities.
Insights
Nanoscale systems offer promising cancer vaccines by delivering tumor antigens and adjuvants. Optimizing nanocarrier properties is key to overcoming challenges in cancer vaccine delivery, efficacy, and safety for clinical application.
Area of Science:
- Oncology
- Immunology
- Nanotechnology
Background:
- Cancer is a complex, multi-step disease characterized by uncontrolled cell growth, invasion, and metastasis.
- Cancer vaccines leverage the immune system to target cancer cells, offering an alternative to conventional treatments.
- Tumor-associated antigens (TAAs) show promise but require adjuvants to elicit a robust immune response.
Purpose of the Study:
- To review the application of nanoscale systems in cancer vaccines.
- To highlight how tumor biology and immunology inform nanodelivery tool design.
- To explore limitations hindering the clinical translation of nanodelivery-based cancer vaccines.
Main Methods:
- Review of in vitro and preclinical studies on nanosystems for cancer vaccines.
- Analysis of different nanocarrier strategies for co-delivery of TAAs and adjuvants.
- Discussion of nanocarrier physicochemical properties and their impact on biological effects.
Main Results:
- Nanosystems can protect and deliver vaccine components, showing potential for prolonged cancer cell eradication.
- Conflicting results exist regarding single vs. multiple nanocarrier systems for adjuvant and TAA delivery.
- Nanocarrier properties significantly influence cellular interactions and therapeutic outcomes.
Conclusions:
- Nanoscale systems are valuable tools for cancer vaccine development, addressing delivery and efficacy challenges.
- Further research is needed to optimize nanocarrier design for improved cancer vaccine performance.
- Overcoming delivery, efficacy, and safety issues is crucial for the clinical success of nanodelivery-based cancer vaccines.
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