Exploring computational approaches to design mRNA Vaccine against vaccinia and Mpox viruses

Author:

Oladipo Elijah K.12ORCID,Oyelakin Olanrewaju D.1,Aiyelabegan Abdulsamad O.1,Olajide Elizabeth O.13,Olatayo Victoria O.1,Owolabi Kaothar P.1,Shittu Yewande B.1,Olugbodi Rhoda O.1,Ajala Hezekiah A.1,Rukayat Raji A.1,Olayiwola Deborah O.1,Irewolede Boluwatife A.1,Jimah Esther M.1,Oloke Julius K.4,Ojo Taiwo O.1,Ajani Olumide F.5ORCID,Iwalokun Bamidele A.3,Kolawole Olatunji M.6,Ariyo Olumuyiwa E.7,Adediran Daniel A.18,Olufemi Seun E.18,Onyeaka Helen9ORCID

Affiliation:

1. Division of Vaccine Design and Development Helix Biogen Institute Ogbomoso Oyo State Nigeria

2. Laboratory of Molecular Biology, Immunology and Bioinformatics, Department of Microbiology Adeleke University Ede Osun State Nigeria

3. Molecular Biology and Biotechnology Department Nigeria Institute of Medical Research Lagos Nigeria

4. Department of Natural Sciences Precious Cornerstone University Ibadan Oyo State Nigeria

5. African Centre for Disease Control HQ Addis Ababa Ethiopia

6. Department of Microbiology University of Ilorin Ilorin Kwara State Nigeria

7. Department of Medicine, Infectious Disease and Tropical Medicine Unit Federal Teaching Hospital Ido Ekiti Ekiti State Nigeria

8. Department of Biochemistry Ladoke Akintola University of Technology Ogbomoso Oyo State Nigeria

9. School of Chemical Engineering University of Birmingham Birmingham UK

Abstract

AbstractBackgroundMessenger RNA (mRNA) vaccines emerged as a powerful tool in the fight against infections. Unlike traditional vaccines, this unique type of vaccine elicits robust and persistent innate and humoral immune response with a unique host cell‐mediated pathogen gene expression and antigen presentation.MethodsThis offers a novel approach to combat poxviridae infections. From the genome of vaccinia and Mpox viruses, three key genes (E8L, E7R, and H3L) responsible for virus attachment and virulence were selected and employed for designing the candidate mRNA vaccine against vaccinia and Mpox viral infection. Various bioinformatics tools were employed to generate (B cell, CTL, and HTL) epitopes, of which 28 antigenic and immunogenic epitopes were selected and are linked to form the mRNA vaccine construct. Additional components, including a 5′ cap, 5′ UTR, adjuvant, 3′ UTR, and poly(A) tail, were incorporated to enhance stability and effectiveness. Safety measures such as testing for human homology and in silico immune simulations were implemented to avoid autoimmunity and to mimics the immune response of human host to the designed mRNA vaccine, respectively. The mRNA vaccine's binding affinity was evaluated by docking it with TLR‐2, TLR‐3, TLR‐4, and TLR‐9 receptors which are subsequently followed by molecular dynamics simulations for the highest binding one to predict the stability of the binding complex.ResultsWith a 73% population coverage, the mRNA vaccine looks promising, boasting a molecular weight of 198 kDa and a molecular formula of C8901H13609N2431O2611S48 and it is said to be antigenic, nontoxic and nonallergic, making it safe and effective in preventing infections with Mpox and vaccinia viruses, in comparison with other insilico‐designed vaccine for vaccinia and Mpox viruses.ConclusionsHowever, further validation through in vivo and in vitro techniques is underway to fully assess its potential.

Publisher

Wiley

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