Submitted:
14 September 2026
Posted:
15 September 2026
You are already at the latest version
Abstract
Avian cholera and typhoid are major bacterial diseases in the poultry industry, causing reduced productivity and economic losses. Here, we developed a single-dose, bivalent, inactivated vaccine containing Pasteurella multocida and Salmonella spp. antigens adsorbed to an aqueous matrix based on chitosan, aluminum hydroxide, and saponin. Different concentrations of the experimental vaccine were evaluated in mice to determine the optimal single-dose concentration. Vaccine efficacy was assessed by survival rates; the experimental vaccine provided complete protection, whereas 60% of animals immunized with a commercial vaccine survived a challenge with 1×10¹⁰ CFU/mL of P. multocida and 5×10¹⁰ CFU/mL of Salmonella spp. Subsequently, experiments were conducted to determine the cytokine profiles of animals immunized with the experimental vaccine (single-dose vs. double-dose regimens) followed by a challenge. Pre-challenge cytokine analysis revealed similar profiles for IL-2, IL-4, IL-10, IL-17, IFN-γ, and TNF-α across groups; however, IL-6 levels were significantly higher in the single-dose experimental vaccine group (G1) than in the commercial vaccine group (G2). In the post-challenge comparative study, the cytokine response induced by the single-dose vaccine was robust and stable, showing no negative interference following the Salmonella spp. challenge, although the double-dose regimen did boost cellular and regulatory cytokines (IFN-γ, TNF-α, and IL-10) specifically against Salmonella spp. Conversely, no significant differences in cytokine profiles were observed among the treatments for groups challenged with P. multocida or for unchallenged groups. The single-dose regimen proved fully sufficient to confer complete protective immunity against both pathogens. The results demonstrated the potential of the single-dose bivalent inactivated vaccine as a promising strategy for the simultaneous prevention of avian typhoid and cholera.
Keywords:
1. Introduction
2. Materials and Methods
2.1. Bacterial Strains and LD50 Determination
2.2. Ethical/legal Requirements and Use of Animals in Experiments
2.3. Antigen Production, Inactivation, and Vaccine Formulation
2.4. Definition of Vaccine Dose
2.5. Cytokine Determination Assay
2.6. Statistical Analysis
3. Results
3.1. Determination of the Lethal Dose of Salmonella Spp. and P. Multocida in Murine Models
3.2. Evaluation of Vaccine Dosage Using Murine Models
3.3. Determination of the Cytokine Profile of Animals Immunized with Experimental and Commercial Vaccines, with and Without Challenge, in Murine Models
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
- Wilkie, I.W.; Harper, M.; Boyce, J.D.; Adler, B. Pasteurella Multocida: Diseases and Pathogenesis. In Assessment & Evaluation in Higher Education; 2012; Vol. 37, pp. 1–22 ISBN 0260-2938.
- Foley, S.L.; Johnson, T.J.; Ricke, S.C.; Nayak, R.; Danzeisen, J. Salmonella Pathogenicity and Host Adaptation in Chicken-Associated Serovars. Microbiol. Mol. Biol. Rev. 2013, 77, 582–607. [CrossRef]
- Gebauer, J.; Tesařík, R.; Králová, N.; Havlíčková, H.; Matiašovic, J. Salmonella Typhimurium-Based Inactivated Vaccine Containing a Wide Spectrum of Bacterial Antigens Which Mimics Protein Expression Changes during Different Stages of an Infection Process. Vet. Microbiol. 2023, 282. [CrossRef]
- van Dijk, J.G.B.; Iverson, S.A.; Gilchrist, H.G.; Harms, N.J.; Hennin, H.L.; Love, O.P.; Buttler, E.I.; Lesceu, S.; Foster, J.T.; Forbes, M.R.; et al. Herd Immunity Drives the Epidemic Fadeout of Avian Cholera in Arctic-Nesting Seabirds. Sci. Rep. 2021, 11, 1–10. [CrossRef]
- Tang, Q.; Li, W.; Dai, N.; Gao, Y.; Han, Y.; Cheng, G.; Gu, C. The Role of Necroptosis, Apoptosis, and Inflammation in Fowl Cholera-Associated Liver Injury in a Chicken Model. Avian Dis. 2017, 61, 491–502. [CrossRef]
- Uribe-Diaz, S.; Santamaria, J.M.; Hargis, B.M.; Kwon, Y.M.; Vuong, C.N.; Erf, G.F. Decoding Poultry Immune Responses to Salmonella Vaccines: Current Advances and Future Directions for next-Generation Vaccine Development. Poult. Sci. 2025, 104, 105884. [CrossRef]
- Bonam, S.R.; Partidos, C.D.; Halmuthur, S.K.M.; Muller, S. An Overview of Novel Adjuvants Designed for Improving Vaccine Efficacy. Trends Pharmacol. Sci. 2017, 38, 771–793. [CrossRef] [PubMed]
- Del Giudice, G.; Rappuoli, R.; Didierlaurent, A.M. Correlates of Adjuvanticity: A Review on Adjuvants in Licensed Vaccines. Semin. Immunol. 2018, 39, 14–21. [CrossRef] [PubMed]
- Shi, S.; Zhu, H.; Xia, X.; Liang, Z.; Ma, X.; Sun, B. Vaccine Adjuvants: Understanding the Structure and Mechanism of Adjuvanticity. Vaccine 2019, 37, 3167–3178. [CrossRef] [PubMed]
- Aucouturier, J.; Dupuis, L.; Ganne, V. Adjuvants Designed for Veterinary and Human Vaccines. Vaccine 2001, 19, 2666–2672. [CrossRef]
- Drane, D.; Gittleson, C.; Boyle, J.; Maraskovsky, E. ISCOMATRIXTM Adjuvant for Prophylactic and Therapeutic Vaccines. Expert Rev. Vaccines 2007, 6, 761–772. [CrossRef]
- Illum, L. Nanoparticulate Systems for Nasal Delivery of Drugs: A Real Improvement over Simple Systems? J. Pharm. Sci. 2007, 96, 473–483. [CrossRef]
- Zeng, Z. Recent Advances of Chitosan Nanoparticles as Drug Carriers. Int. J. Nanomedicine 2011, 765. [CrossRef]
- Samal, S.K.; Dash, M.; Vlierberghe, S. Van; Kaplan, D.L.; Chiellini, E.; Blitterswijk, C. Van; Moroni, L.; Dubruel, P. Cationic Polymers and Their Therapeutic Potential. Chem. Soc. Rev. 2012, 41, 7147–7194. [CrossRef]
- Deusdará, T.T.; Félix, M.K.C.; de S. Brito, H.; Cangussu, E.W.S.; de S. Moura, W.; Albuquerque, B.; Silva, M.G.; dos Santos, G.R.; de Morais, P.B.; da Silva, E.F.; et al. Using an Aluminum Hydroxide–Chitosan Matrix Increased the Vaccine Potential and Immune Response of Mice against Multi-Drug-Resistant Acinetobacter Baumannii. Vaccines 2023, 11. [CrossRef]
- Ding, L.; Lu, J.; Zhu, Y.; Qi, Q.; Yan, G.; Shan, Z.; Lu, Y.; Xu, H. Integrated Genomic and Phenotypic Characterization of Representative Salmonella Pullorum and Salmonella Enteritidis Isolated from a Poultry Farm. Front. Microbiol. 2026, 17. [CrossRef]
- Reed, L.J.; Muench, H. A Simple Method of Estimating Fifty per Cent Endpoints. Am. J. Epidemiol. 1938, 27, 493–497. [CrossRef]
- Ghadimipour, R.; Ghorbanpoor, M.; Gharibi, D.; Mayahi, M.; Jabbary, A.R. Effects of Selected Adjuvants on Immunogenicity and Protectivity of Pasteurella Multocida Bacterin Vaccine in Chickens. Arch. Razi Inst. 2021, 76, 741–749. [CrossRef]
- David, S.C.; Lau, J.; Singleton, E. V; Babb, R.; Davies, J.; Hirst, T.R.; McColl, S.R.; Paton, J.C.; Alsharifi, M. The Effect of Gamma-Irradiation Conditions on the Immunogenicity of Whole-Inactivated Influenza A Virus Vaccine. Vaccine 2017, 35, 1071–1079. [CrossRef]
- Ayub, A.; Usman, M.; Ihsan, A.; Ain, Q.; Awan, A.B.; Wajid, M.; Ali, A.; Haque, A.; Iqbal, M.; Sarwar, Y. Immunological Characterization of Chitosan Adjuvanted Outer Membrane Proteins of Salmonella Enterica Serovar Typhi as Multi-Epitope Typhoid Vaccine Candidate. Mol. Biol. Rep. 2022, 49, 7377–7387. [CrossRef]
- Hem, S.L.; HogenEsch, H. Relationship between Physical and Chemical Properties of Aluminum-Containing Adjuvants and Immunopotentiation. Expert Rev. Vaccines 2007, 6, 685–698. [CrossRef]
- Ren, W.; Zou, L.; Ruan, Z.; Li, N.; Wang, Y.; Peng, Y.; Liu, G.; Yin, Y.; Li, T.; Hou, Y.; et al. Dietary L-Proline Supplementation Confers Immunostimulatory Effects on Inactivated Pasteurella Multocida Vaccine Immunized Mice. Amino Acids 2013, 45, 555–561. [CrossRef]
- Bahadur Basnet, H.; Kwon, H.; Cho, S.-H.; Kim, S.; Yoo, H.; Park, Y.; Yoon, S.; Shin, N.; Youn, H. Reproduction of Fowl Typhoid by Respiratory Challenge with Salmonella Gallinarum. Avian Dis. 2008, 52, 156–159. [CrossRef]
- Lin, Z.; Tang, P.; Jiao, Y.; Kang, X.; Li, Q.; Xu, X.; Sun, J.; Pan, Z.; Jiao, X. Immunogenicity and Protective Efficacy of a Salmonella Enteritidis SptP Mutant as a Live Attenuated Vaccine Candidate. BMC Vet. Res. 2017, 13, 1–9. [CrossRef]
- Homayoon, M.; Tahamtan, Y.; Kargar, M.; Hosseini, S.M.H.; Akhavan Sepahy, A. Pasteurella Multocida Inactivated with Ferric Chloride and Adjuvanted with Bacterial DNA Is a Potent and Efficacious Vaccine in Balb/c Mice. J. Med. Microbiol. 2018, 67, 1383–1390. [CrossRef]
- Zhao, T.; Cai, Y.; Jiang, Y.; He, X.; Wei, Y.; Yu, Y.; Tian, X. Vaccine Adjuvants: Mechanisms and Platforms. Signal Transduct. Target. Ther. 2023, 8. [CrossRef]
- Walker, G.T.; Gerner, R.R.; Nuccio, S.P.; Raffatellu, M. Murine Models of Salmonella Infection. Curr. Protoc. 2023, 3, 1–34. [CrossRef]
- Acevedo-Villanueva, K.Y.; Akerele, G.O.; Hakeem, W.G. Al; Renu, S.; Shanmugasundaram, R.; Selvaraj, R.K. A Novel Approach against Salmonella: A Review of Polymeric Nanoparticle Vaccines for Broilers and Layers. Vaccines 2021, 9. [CrossRef]
- Abreu, R.; Essler, L.; Giri, P.; Quinn, F. Interferon-Gamma Promotes Iron Export in Human Macrophages to Limit Intracellular Bacterial Replication. PLoS One 2020, 15, 1–19. [CrossRef]
- Martinez-Espinosa, I.; Serrato, J.A.; Ortiz-Quintero, B. Role of Il-10-Producing Natural Killer Cells in the Regulatory Mechanisms of Inflammation during Systemic Infection. Biomolecules 2022, 12. [CrossRef]
- Vinod, N.; Noh, H.B.; Oh, S.; Ji, S.; Park, H.J.; Lee, K.S.; Kim, S.C.; Park, H.O.; Yang, J.S.; Choi, C.W. A Salmonella Typhimurium Ghost Vaccine Induces Cytokine Expression in Vitro and Immune Responses in Vivo and Protects Rats against Homologous and Heterologous Challenges. PLoS One 2017, 12, 1–18. [CrossRef]
- Wang, N.; Scott, T.A.; Kupz, A.; Shreenivas, M.M.; Peres, N.G.; Hocking, D.M.; Yang, C.; Jebeli, L.; Beattie, L.; Groom, J.R.; et al. Vaccine-Induced Inflammation and Inflammatory Monocytes Promote CD4+ T Cell-Dependent Immunity against Murine Salmonellosis. PLoS Pathog. 2023, 19, 1–28. [CrossRef]
- Emami, S.; Westerlund, E.; Rojas Converso, T.; Johansson-Lindbom, B.; Persson, J.J. Protection Acquired upon Intraperitoneal Group a Streptococcus Immunization Is Independent of Concurrent Adaptive Immune Responses but Relies on Macrophages and IFN-γ. Virulence 2025, 16, 1–16. [CrossRef]
- Homayoon, M.; Tahamtan, Y.; Kargar, M. The Comparison Detection of Cytokines (IL-6 and IL-12) from Spleen Cells and Serums in Balb/c Mice after Immunization with Killed P. Multocida Vaccines Co-Formulated with Bacterial DNAs as Adjuvant. Arch. Clin. Microbiol. 2020, 11. [CrossRef]
- Zhao, Z.Z.; Zhang, H.B.; Chen, Q.; Su, D.; Xie, Z.; Wang, Y.Y.; Yang, Y.; Wang, Z.Z.; Li, J.L.; Wu, K.Y.; et al. Promotion of Immunity of Mice to Pasteurella Multocida and Hog Cholera Vaccine by Pig Interleukin-6 Gene and CpG Motifs. Comp. Immunol. Microbiol. Infect. Dis. 2009, 32, 191–205. [CrossRef]





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