Literature DB >> 32931955

Subtractive proteomics and immunoinformatics approaches to explore Bartonella bacilliformis proteome (virulence factors) to design B and T cell multi-epitope subunit vaccine.

Hina Gul1, Syed Shujait Ali2, Shoaib Saleem3, Shahzeb Khan1, Jafar Khan4, Abdul Wadood5, Ashfaq Ur Rehman6, Zia Ullah1, Shahid Ali7, Haji Khan1, Zahid Hussain8, Fazal Akbar9, Abbas Khan10, Dong-Qing Wei11.   

Abstract

Bartonella bacilliformis a gram-negative facultative aerobe responsible for the Carrion's disease widely distributed in Ecuador, Peru, and Colombia with a high mortality rate when no specific treatment is received. B bacilliformis is transmitted by Sand fly (Lutzomyia verrucarum) to healthy individuals. Immunoinformatic and subtractive proteomics approaches were employed in this study to prioritize the best candidates for vaccine designing. These approaches resulted in five vaccine candidates, flagellar biosynthetic protein (Uniprot ID: A1UTU1), heme exporter protein C (UniProt ID: A1UU82), Cytochrome c-type biogenesis protein (Uniprot ID: A1URZ7), Hemin ABC transporter (Uniprot ID: A1US20) and Phosphatidate cytidylyltransferase (Uniprot ID: A1USE3). The mentioned proteins are antigenic and essential for pathogen survival. A range of immune-informatics tools was applied for the prediction of B and T cell epitopes for the vaccine candidate proteins. In-silico vaccine was constructed using carefully evaluated epitopes and consequently modeled for docking with human Toll-like receptor 4. TLR-4 agonist 50S ribosomal protein L7/L12 (UniproKB ID; P9WHE3) was linked to the vaccine as an adjuvant to boost immune response towards the vaccine. For stability evaluation of the vaccine-TLR-4 docked complex, MD simulations were performed. The final vaccine was back-translated and cloned in Eschericia coli to attain the maximal expression of the vaccine protein. The maximal expression was ensured, and the CAI score of 0.96 was reported. The current vaccine requires future experimental validation to confirm its effectiveness. The vaccine developed will be helpful to protect against B bacilliformis associated infections.
Copyright © 2020 Elsevier B.V. All rights reserved.

Entities:  

Keywords:  Bartonella bacilliformis; Docking; Molecular docking; Simulation; Vaccine

Year:  2020        PMID: 32931955     DOI: 10.1016/j.meegid.2020.104551

Source DB:  PubMed          Journal:  Infect Genet Evol        ISSN: 1567-1348            Impact factor:   3.342


  2 in total

1.  Core-Proteomics-Based Annotation of Antigenic Targets and Reverse-Vaccinology-Assisted Design of Ensemble Immunogen against the Emerging Nosocomial Infection-Causing Bacterium Elizabethkingia meningoseptica.

Authors:  Muhammad Idrees; Muhammad Yasir Noorani; Kalim Ullah Altaf; Eid A Alatawi; Faris F Aba Alkhayl; Khaled S Allemailem; Ahmad Almatroudi; Murad Ali Khan; Muhammad Hamayun; Taimoor Khan; Syed Shujait Ali; Abbas Khan; Dong-Qing Wei
Journal:  Int J Environ Res Public Health       Date:  2021-12-24       Impact factor: 3.390

2.  Subtractive proteomics assisted therapeutic targets mining and designing ensemble vaccine against Candida auris for immune response induction.

Authors:  Taimoor Khan; Muhammad Suleman; Syed Shujait Ali; Muhammad Farhan Sarwar; Imtiaz Ali; Liaqat Ali; Abbas Khan; Bakht Rokhan; Yanjing Wang; Ruili Zhao; Dong-Qing Wei
Journal:  Comput Biol Med       Date:  2022-04-01       Impact factor: 6.698

  2 in total

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