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◆ Computational biology and chemistry2026-08-09

Constructing a novel chimeric multiepitope vaccine against Simian immunodeficiency virus accessory proteins: Using hybrid deep learning algorithms and bioinformatics-driven tools.

Mohammad-Matin Karbalaee-Alinazari, Ava Hashempour, Fatemeh Hassanzadeh, Zahra Hassanzadeh

原始摘要(英文原文)· Original abstract
Simian immunodeficiency virus (SIV), the evolutionary precursor of HIV, mirrors HIV in viral organization, transmission patterns, and disease progression in rhesus macaques. Because of these parallels, SIV serves as a practical model for exploring preventative strategies. This study aimed to examine SIV accessory proteins-Nef, Vif, Vpr, and Vpx-for their potential utility in vaccine construction using computational immunology and bioinformatics tools. Multiple epitope prediction platforms were employed to screen viral proteins and identify immunogenic regions meeting the criteria for antigenicity, lack of toxicity, and absence of allergenicity. Selected epitopes were assembled into a multiepitope construct using appropriate linkers and combined with the 50S ribosomal protein L7/L12 as an adjuvant. Structural modeling and refinement were followed by molecular docking against five Toll-like receptors (TLR2, TLR3, TLR4, TLR7, and TLR9). Stability and dynamic behavior were assessed using normal mode analysis and molecular dynamics simulations. An immune simulation model was applied to estimate the vaccine's immunological performance. Thirty candidate epitopes fulfilled all selection criteria and were incorporated into the final construct. The refined structure demonstrated favorable binding orientations with all examined TLRs. Computational stability analyses supported the structural integrity of the vaccine-receptor complexes. Immune simulations predicted strong antibody responses and activation of key cellular immune pathways. The findings suggest that the designed multiepitope construct has the potential to stimulate broad and durable immune responses against SIV. These results support further experimental evaluation and highlight the usefulness of in silico approaches in early vaccine design.
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Constructing a novel chimeric multiepitope vaccine against Simian immunodeficiency virus accessory proteins: Using hybrid deep learning algorithms and bioinformatics-driven tools. — 科研速览 Science Skim