Development of Plant-Based Vaccines for Prevention of Avian Influenza and Newcastle Disease in Poultry
Abstract
:1. Introduction
2. Avian Influenza Virus (AIV)
3. Newcastle Disease Virus
4. Overview of Vaccines for AI and ND Immunisation
Vaccine | Advantages | Disadvantages |
---|---|---|
Inactivated vaccine |
|
|
Live-attenuated vaccine |
|
|
Subunit vaccine |
|
|
Vector-based vaccine |
|
|
DNA vaccine |
|
|
Virus-like particles (VLPs) |
|
|
5. Pipeline for Production of Plant-Based Vaccines
5.1. Plant-Based Vaccines against Avian Influenza
Antigen | Expression Host | Immunity | Notes | References |
---|---|---|---|---|
HA (H7) | N. benthamiana | Not mentioned | Transient expression | [70] |
HA1 | Alfalfa, soybean, and lettuce | Not mentioned | Expression targeted to ER, apoplastic space and protein bodies | [71] |
Full-length and truncated HA (H5) | N. benthamiana, N. tabacum | Specific immune response in mice and chicken | Targeting of different cell compartments | [72] |
HA (H5) | N. tabacum | HAI antibody raised in chickens | Targeted expression in seeds | [73] |
Oligomeric HA (H5) | N. benthamiana | Neutralising antibody in chicken and mice | Oligomerisation achieved by several approaches | [75,76,77] |
HA+M2 VLPs (H6) | N. benthamiana1 | Neutralising antibody in chicken | Co-expression of M2 and HA increased yield of VLPs | [78] |
HA | Arabidopsis thaliana | HA-specific antibodies and mucosal antibodies in mice | Oral administration | [79] |
Truncated HA (H5) | N. benthamiana | Specific antibodies in mice and ferrets | Intranasal administration | [80] |
M2e peptide (H5) | N. tabacum | Not mentioned | Stable transfection | [81] |
M2e fused to ricin toxin B chain (H5) | Duckweed | Specific antibodies against M2e peptide in mice | Oral administration to mice | [82] |
HA (H5) | Duckweed | Neutralising antibodies and protective immunity in birds | Oil-in-water emulsion protected chickens | [83] |
5.2. Plant-Based Vaccines against Newcastle Disease Virus
Antigen | Host | Notes | References |
---|---|---|---|
HN (LaSota) | N. benthamiana1 | Compared SP of HN with sea anemone equistatin | [88] |
HN (LaSota) | N. tabacum | N/A | [89] |
F (LaSota) | Zea mays | Neutralising antibodies elicited in chickens | [90,91] |
F and HN (LaSota) | Solanum tuberosum cv. Kennebec | Humoral and cell-mediated immune responses in mice | [88,92] |
F and HN (LaSota) | N. tabacum | ELISA 2 detection of anti-NDV antibodies in Rabbit | [93,94] |
F and HN (chicken/SPVC/Karachi) | Zea mays | Specific locally secreted IgY in chickens | [95] |
F (XJ-2/97) | Oryza sativa | Challenge of chickens | [96] |
6. Advantages of Plant-Based Vaccines
7. Challenges for Oral Delivery of Plant-Based Vaccines?
8. Conclusions and Future Prospects
Author Contributions
Funding
Conflicts of Interest
References
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Vector Name | Vector Backbone | Features and Modification(s) | References |
---|---|---|---|
Magnifection system developed by Icon Genetics, Germany (MagnICON) | Hybrid between TMV and TVCV | Consist of 3 modules:
| [50,53] |
pEAQ-HT | CPMV |
| [41,52,54] |
pHREAC | CPMV |
| [43] |
TRBO (TMV-RNA-overexpression) | TMV |
| [55] |
pBID4 | TMV |
| [56] |
PVX vector | PVX |
| [57] |
BeYDV | Geminivirus |
| [58] |
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Nurzijah, I.; Elbohy, O.A.; Kanyuka, K.; Daly, J.M.; Dunham, S. Development of Plant-Based Vaccines for Prevention of Avian Influenza and Newcastle Disease in Poultry. Vaccines 2022, 10, 478. https://doi.org/10.3390/vaccines10030478
Nurzijah I, Elbohy OA, Kanyuka K, Daly JM, Dunham S. Development of Plant-Based Vaccines for Prevention of Avian Influenza and Newcastle Disease in Poultry. Vaccines. 2022; 10(3):478. https://doi.org/10.3390/vaccines10030478
Chicago/Turabian StyleNurzijah, Ika, Ola A. Elbohy, Kostya Kanyuka, Janet M. Daly, and Stephen Dunham. 2022. "Development of Plant-Based Vaccines for Prevention of Avian Influenza and Newcastle Disease in Poultry" Vaccines 10, no. 3: 478. https://doi.org/10.3390/vaccines10030478
APA StyleNurzijah, I., Elbohy, O. A., Kanyuka, K., Daly, J. M., & Dunham, S. (2022). Development of Plant-Based Vaccines for Prevention of Avian Influenza and Newcastle Disease in Poultry. Vaccines, 10(3), 478. https://doi.org/10.3390/vaccines10030478