A Polysaccharide-Based Oral-Vaccine Delivery System and Adjuvant for the Influenza Virus Vaccine
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Cells and Animals
2.3. InAc-Influenza A Nanoparticles (InAc-Inf-A-NPs) Formulation
2.4. Analysing the Morphology of InAc-Inf-A-NPs Using a Scanning Electron Microscope (SEM)
2.5. Analysing the Size and Charge of InAc-Inf-A-NPs Using Dynamic Light Scattering (DLS)
2.6. Quantification of Encapsulated Influenza A Nucleoprotein (Inf-A Peptide) in InAc-Inf-A-NPs
2.7. Determining the Stability of InAc-NPs in Gastric Fluids
2.8. Determining the Internalization of InAc-NPs by Murine Macrophages
2.9. Analyzing the Efficacy of InAc-Inf-A-NPs as a Vaccine Adjuvant and an Oral Vaccine Delivery System in Stimulating an Immune Response
2.10. Quantifying the Concentrations of Influenza A-Specific IgG and IgA in Serum Samples
2.11. Quantifying the Total IgA and Influenza A-Specific IgA Concentrations in Tissue Samples from the Small Intestine (Ileum), Lungs, and Spleen
2.12. Hemagglutination Inhibition Assay (HI Assay) to Measure Influenza-A-Specific Antibodies in the Ileum and Lungs
2.13. Statistical Analysis
3. Results
3.1. Physicochemical Characterization of the InAc Polymer and Vaccine Formulation
3.2. InAc-NPs: A Promising Nano-Delivery System for Oral Vaccine Delivery
3.3. InAc-NPs Enhanced the Internalization of Antigens by Murine Macrophages
3.4. InAc-Inf-A-NPs Induced a Strong Antigen-Specific Antibody Response in Serum
3.5. InAc-Inf-A-NPs Induced a Strong Secretory (sIgA) Antibody Response in the Intestine and Lungs
3.6. InAc-Inf-A-NPs Significantly Enhanced Virus-Specific Hemagglutination Inhibition (HI) Titer in Lungs and Intestine
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Time (Minutes) | Flow Rate (mL/min) | Mobile Phase-A | Mobile Phase-B |
---|---|---|---|
0.0 | 0.7 | 80.0% | 20.0% |
5.0 | 0.7 | 25.0% | 75.0% |
10.0 | 0.7 | 80.0% | 20.0% |
S.No. | Treatment Groups | Mean Fluorescence Intensity |
---|---|---|
1. | Media | 5678.48 ± 346.15 |
2. | PLGA-FITC-Ova-NPs | 21,828.27 ± 2018.09 * |
3. | InAc-FITC-Ova-NPs | 160,497.5 ± 17,382.03 *,** |
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Valiveti, C.K.; Rajput, M.; Thakur, N.; Momin, T.; Bhowmik, M.; Tummala, H. A Polysaccharide-Based Oral-Vaccine Delivery System and Adjuvant for the Influenza Virus Vaccine. Vaccines 2024, 12, 1121. https://doi.org/10.3390/vaccines12101121
Valiveti CK, Rajput M, Thakur N, Momin T, Bhowmik M, Tummala H. A Polysaccharide-Based Oral-Vaccine Delivery System and Adjuvant for the Influenza Virus Vaccine. Vaccines. 2024; 12(10):1121. https://doi.org/10.3390/vaccines12101121
Chicago/Turabian StyleValiveti, Chaitanya K., Mrigendra Rajput, Neelu Thakur, Tooba Momin, Malabika Bhowmik, and Hemachand Tummala. 2024. "A Polysaccharide-Based Oral-Vaccine Delivery System and Adjuvant for the Influenza Virus Vaccine" Vaccines 12, no. 10: 1121. https://doi.org/10.3390/vaccines12101121
APA StyleValiveti, C. K., Rajput, M., Thakur, N., Momin, T., Bhowmik, M., & Tummala, H. (2024). A Polysaccharide-Based Oral-Vaccine Delivery System and Adjuvant for the Influenza Virus Vaccine. Vaccines, 12(10), 1121. https://doi.org/10.3390/vaccines12101121