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Intra-lymph Node Injection of Biodegradable Polymer Particles
Published on: January 2, 2014
Facile preparation of a metal-phenolic network-based lymph node targeting nanovaccine for antitumor immunotherapy
Qianhong Su1, Zuwei Liu1, Ruolin Du1
1Key Laboratory of Food Nutrition and Functional Food of Hainan Province, College of Food Science and Engineering, Hainan University, Haikou 570228, China.
Abstract:
Cancer vaccines are being explored for enhanced cancer immunotherapy and prophylaxis. Some of their prevailing weaknesses, however, such as complicated preparation, poor biocompatibility, and failure to elicit strong cellular immune responses, have limited their further clinical applications. Here, we reported a multifunctional nanovaccine that was prepared in a quick and simple way. During the self-assembly of metal-phenolic networks (MPNs), the antigen ovalbumin (OVA) and immunoreactive chlorogenic acid (CHA) were simultaneously loaded. Owing to its dual pH and reduction sensitivities, the nanovaccine could deliver antigens into the cytoplasm of dendritic cells (DCs) and facilitate the cross-presentation of antigens. Moreover, the results of in vivo immunization assays demonstrated that the nanovaccine significantly excited the antigen presentation of DCs and provoked a robust cellular immune response with the restrained activation of regulatory T cells (Tregs), by targeting lymph nodes and executing the function of CHA. In vivo antitumor assays indicated that the nanovaccine with good biocompatibility afforded conspicuous cancer treatment and prevention effects. Overall, the nanovaccine presented in this study shows a promise for potentiating cancer immunotherapy by the lymph node-targeted delivery. STATEMENT OF SIGNIFICANCE: Cancer nanovaccines can be used for cancer immunotherapy. However, some existing shortcomings, such as cumbersome preparation, poor biocompatibility, and failure to elicit strong immune responses, limit the clinical application of cancer nanovaccines. This study developed a multifunctional nanovaccine that was readily prepared through the self-assembly of metal-phenolic networks. The nanovaccine with dual pH and reduction sensitivities could efficiently promote the antigen lysosome escape and cross-presentation. In vivo, it efficiently delivered antigen into lymph nodes and provoked strong cellular immune responses, and thus it showed significant cancer immunotherapy and prevention effect.
Insights
This study presents a novel multifunctional nanovaccine for cancer immunotherapy. The nanovaccine is easily prepared, enhances immune responses, and shows significant cancer treatment and prevention effects.
Area of Science:
- Biomedical Engineering
- Immunology
- Materials Science
Background:
- Cancer vaccines are crucial for immunotherapy but face challenges like complex preparation and weak immune responses.
- Existing cancer nanovaccines have limitations hindering clinical application, including poor biocompatibility and insufficient cellular immunity.
Purpose of the Study:
- To develop a multifunctional nanovaccine with simple preparation and enhanced immunogenicity for cancer immunotherapy.
- To investigate the nanovaccine's ability to deliver antigens and elicit robust cellular immune responses.
Main Methods:
- Fabrication of a multifunctional nanovaccine via self-assembly of metal-phenolic networks (MPNs), co-loading ovalbumin (OVA) and chlorogenic acid (CHA).
- Utilizing dual pH and reduction sensitivities for efficient antigen delivery into dendritic cells (DCs) and promoting cross-presentation.
- In vivo evaluation of nanovaccine efficacy in lymph node targeting, DC activation, immune response induction, and antitumor activity.
Main Results:
- The nanovaccine demonstrated dual pH and reduction sensitivity, facilitating antigen escape from lysosomes and enhancing cross-presentation by DCs.
- In vivo studies showed significant DC activation, robust cellular immune responses with suppressed regulatory T cells (Tregs), and effective lymph node targeting.
- The nanovaccine exhibited good biocompatibility and significant cancer treatment and prevention effects in vivo.
Conclusions:
- The developed multifunctional nanovaccine offers a promising approach for cancer immunotherapy due to its simple preparation and enhanced efficacy.
- Lymph node-targeted delivery and dual stimuli-responsive properties contribute to potent cellular immune responses and effective cancer treatment.
- This nanovaccine platform holds potential for advancing cancer immunotherapy and prophylaxis.
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