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Protocol for Recombinant RBD-based SARS Vaccines: Protein Preparation, Animal Vaccination and Neutralization Detection
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The Development of Epitope-Based Recombinant Protein Vaccines against SARS-CoV-2
Kanwal Khalid1, Hui Xuan Lim2, Jung Shan Hwang3
1Centre for Virus and Vaccine Research, School of Medical and Life Sciences, Sunway University, Bandar Sunway, Petaling Jaya, Selangor, 47500, Malaysia.
Abstract:
The COVID-19 pandemic continues to cause infections and deaths, which are attributable to the SARS-CoV-2 Omicron variant of concern (VOC). Moderna's response to the declining protective efficacies of current SARS-CoV-2 vaccines against Omicron was to develop a bivalent booster vaccine based on the Spike (S) protein from the Wuhan and Omicron BA.4/BA.5 strains. This approach, while commendable, is unfeasible in light of rapidly emerging mutated viral strains. PubMed and Google Scholar were systematically reviewed for peer-reviewed papers up to January 2024. Articles included focused on specific themes such as the clinical history of recombinant protein vaccine development against different diseases, including COVID-19, the production of recombinant protein vaccines using different host expression systems, aspects to consider in recombinant protein vaccine development, and overcoming problems associated with large-scale recombinant protein vaccine production. In silico approaches to identify conserved and immunogenic epitopes could provide broad protection against SARS-CoV-2 VOCs but require validation in animal models. The recombinant protein vaccine development platform has shown a successful history in clinical development. Recombinant protein vaccines incorporating conserved epitopes may utilize a number of expression systems, such as yeast (Saccharomyces cerevisiae), baculovirus-insect cells (Sf9 cells), and Escherichia coli (E. coli). Current multi-epitope subunit vaccines against SARS-CoV-2 utilizing synthetic peptides are unfeasible for large-scale immunizations. Recombinant protein vaccines based on conserved and immunogenic proteins produced using E. coli offer high production yields, convenient purification, and cost-effective production of large-scale vaccine quantities capable of protecting against the SARS-CoV-2 D614G strain and its VOCs.
Insights
Developing recombinant protein vaccines using conserved epitopes offers broad protection against SARS-CoV-2 variants. Escherichia coli expression systems provide a cost-effective platform for large-scale production of effective COVID-19 vaccines.
Area of Science:
- Vaccinology
- Molecular Biology
- Immunology
Background:
- The COVID-19 pandemic persists, driven by SARS-CoV-2 variants like Omicron.
- Current vaccines show declining efficacy against emerging strains, necessitating new approaches.
- Moderna's bivalent vaccine targets Wuhan and Omicron BA.4/BA.5 strains, but rapid mutation limits its long-term feasibility.
Purpose of the Study:
- To explore the potential of recombinant protein vaccines for broad protection against SARS-CoV-2 variants.
- To evaluate different expression systems for large-scale recombinant protein vaccine production.
- To identify strategies for developing effective and scalable COVID-19 vaccines.
Main Methods:
- Systematic literature review of PubMed and Google Scholar up to January 2024.
- Focused on recombinant protein vaccine development, production systems, and scalability challenges.
- Investigated in silico approaches for identifying conserved and immunogenic epitopes.
Main Results:
- Recombinant protein vaccine platforms have a successful clinical development history.
- In silico identification of conserved epitopes may offer broad protection but requires validation.
- Escherichia coli (E. coli) is a promising host system for high-yield, cost-effective recombinant protein vaccine production.
- Current synthetic peptide vaccines are not feasible for large-scale immunization.
Conclusions:
- Recombinant protein vaccines incorporating conserved epitopes are a viable strategy against SARS-CoV-2 variants.
- Escherichia coli offers advantages in yield, purification, and cost for large-scale vaccine manufacturing.
- This approach can provide protection against the ancestral SARS-CoV-2 D614G strain and its variants of concern.
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