Designing and modeling of complex DNA vaccine based on tropomyosin protein of Boophilus genus tick

Appl Biochem Biotechnol. 2015 Jan;175(1):323-39. doi: 10.1007/s12010-014-1245-z. Epub 2014 Oct 1.

Abstract

Boophilus tick is a bloodsucking ectoparasite that transfers some pathogens, reducing production and thus leading to economical losses in the cattle industry. Tropomyosin (TPM) protein is a salivary protein, has actin regulator activity, and plays an important role in immune reactions against parasites. In the current study, besides developing a safe, effective, and broad spectrum protective measure against Boophilus genus tick based on TPM protein, we attempted to minimize possible problems occurring in the design of polytopic vaccines. Briefly, the steps that were followed in the present study were as follows: retrieving sequences and finding the mutational/conservative regions, selecting consensus and high immunogenic epitopes of B and CD4(+) T cells by different approaches, three-dimensional structure (3D structure) prediction and representation of epitopes and highly variable/conserve regions, designing vaccinal construct by fusion of B and T cell epitopes by special patterns and improving immunogenicity, evaluation of the constructs' primary structure and posttranslational modification, calculation of hydrophobic regions, reverse translation, codon optimization, open reading frame checking, insertion of start/end codon, Kozak sequence, and finally constructing the DNA vaccine. Variation plot showed some shared epitopes among the ticks' and mites' species that some might be effective only in some species. Finally, by following the steps mentioned above, two constructs for B and T cells were achieved. Checking constructs revealed their reliability and efficacy for in vitro production and utilization. Successful in silico modeling is an essential step of designing vigorous vaccines. We developed a novel protective and therapeutic vaccine against Boophilus genus (based on TPM protein). At the next step, constructed DNA vaccine would be produced in vitro and administrated to cattle, and its potency to induction of immune response and protection against Boophilus genus as well as other ticks and mites will be evaluated.

MeSH terms

  • Amino Acid Sequence
  • Animals
  • B-Lymphocytes / immunology
  • CD4-Positive T-Lymphocytes / immunology
  • Cattle
  • Cattle Diseases / immunology
  • Cattle Diseases / prevention & control*
  • Computer Simulation
  • Epitopes / chemistry
  • Epitopes / immunology*
  • Ticks / immunology
  • Tropomyosin / chemistry
  • Tropomyosin / immunology*
  • Vaccines, DNA / genetics
  • Vaccines, DNA / immunology*

Substances

  • Epitopes
  • Tropomyosin
  • Vaccines, DNA