Related Experiment Video
Updated: Feb 9, 2026

Determination of Vaccine Immunogenicity Using Bovine Monocyte-Derived Dendritic Cells
Published on: May 19, 2023
Design and testing of a highly conserved human rotavirus VP8* immunogenic peptide with potential for vaccine
Eileena Mohanty1, Budheswar Dehury2, Ashok Kumar Satapathy3
1All India institute of medical sciences, Bhubaneshwar, 751019, Odisha, India.
Insights
Rotavirus causes severe diarrhea and infant deaths globally, especially in India. Researchers identified a specific viral protein subunit using computational methods for a potentially more effective vaccine candidate.
Area of Science:
- Virology
- Immunology
- Vaccine Development
Background:
- Rotavirus infection is a leading cause of severe diarrhea and mortality in children under five, particularly in developing nations like India.
- Existing rotavirus vaccines have shown limited efficacy and some adverse effects, necessitating novel approaches.
- Significant genetic diversity among circulating Indian rotavirus strains poses challenges for vaccine effectiveness.
Purpose of the Study:
- To identify a specific, conserved antigenic peptide from the rotavirus VP4 protein for potential vaccine development.
- To find a peptide that elicits both T and B cell responses for maximum protection.
- To explore computational methods for identifying optimal vaccine targets.
Main Methods:
- Utilized advanced computational techniques and sequence databases.
- Performed an in silico analysis to identify conserved regions of the rotavirus VP4 protein.
- Focused on the VP8* subunit of the VP4 protein, known for its role in immunogenicity.
Main Results:
- Identified a highly conserved VP8* subunit of the rotavirus VP4 surface protein.
- This identified subunit demonstrated both T and B cell processivity.
- The selected subunit was found to be non-allergenic.
Conclusions:
- The identified VP8* subunit is a promising candidate for rotavirus vaccine development.
- This subunit could be used in in vivo models to induce protective antibodies.
- An in silico approach can effectively identify specific and potentially safe vaccine targets against diverse rotavirus strains.
Abstract:
Rotavirus infection of young children particularly below five years of age resulting in severe diarhoea, is the cause of a large number of infant deaths all over the world, more so in developing countries like India. Vaccines developed against this infection in the last two decades have shown mixed results with some of them leading to complications. Oral vaccines have not been very effective in India. Significant diversity has been found in circulating virus strains in India. Development of a vaccine against diverse genetic variants of the different strains would go a long way in reducing the incidence of infection in developing countries. Success of such a vaccine would depend to a large extent on the antigenic peptide to be used in antibody production. The non-glycosylated protein VP4 on the surface capsid of the virus is important in rota viral immunogenicity and the major antigenic site(s) responsible for neutralization of the virus via VP4 is in the VP8* subunit of VP4. It is necessary that the peptide should be very specific and a peptide sequence which would stimulate both the T and B immunogenic cells would provide maximum protection against the virus. Advanced computational techniques and existing databases of sequences of the VP4 protein of rotavirus help in identification of such specific sequences. Using an in silico approach we have identified a highly conserved VP8* subunit of the VP4 surface protein of rotavirus which shows both T and B cell processivity and is also non-allergenic. This sub-unit could be used in in vivo models for induction of antibodies.
Related Concept Videos
Vaccinations
What is Conservation Biology?
Conservation of Small Populations
Conserved Binding Sites
Binding sites are often located in large pockets, and if their location on a protein’s surface is unknown, it can be predicted using various approaches. The energetic method computationally...
Peptide Bonds
Group Design

