Leveraging artificial intelligence in vaccine development: A narrative review

Vaccine development stands as a cornerstone of public health efforts, pivotal in curbing infectious diseases and reducing global morbidity and mortality. However, traditional vaccine development methods are often time-consuming, costly, and inefficient. The advent of artificial intelligence (AI) has...

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Veröffentlicht in:Journal of microbiological methods 2024-09, Vol.224, p.106998, Article 106998
Hauptverfasser: Olawade, David B., Teke, Jennifer, Fapohunda, Oluwaseun, Weerasinghe, Kusal, Usman, Sunday O., Ige, Abimbola O., Clement David-Olawade, Aanuoluwapo
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Sprache:eng
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Zusammenfassung:Vaccine development stands as a cornerstone of public health efforts, pivotal in curbing infectious diseases and reducing global morbidity and mortality. However, traditional vaccine development methods are often time-consuming, costly, and inefficient. The advent of artificial intelligence (AI) has ushered in a new era in vaccine design, offering unprecedented opportunities to expedite the process. This narrative review explores the role of AI in vaccine development, focusing on antigen selection, epitope prediction, adjuvant identification, and optimization strategies. AI algorithms, including machine learning and deep learning, leverage genomic data, protein structures, and immune system interactions to predict antigenic epitopes, assess immunogenicity, and prioritize antigens for experimentation. Furthermore, AI-driven approaches facilitate the rational design of immunogens and the identification of novel adjuvant candidates with optimal safety and efficacy profiles. Challenges such as data heterogeneity, model interpretability, and regulatory considerations must be addressed to realize the full potential of AI in vaccine development. Integrating emerging technologies, such as single-cell omics and synthetic biology, promises to enhance vaccine design precision and scalability. This review underscores the transformative impact of AI on vaccine development and highlights the need for interdisciplinary collaborations and regulatory harmonization to accelerate the delivery of safe and effective vaccines against infectious diseases. •AI accelerates vaccine development by streamlining antigen selection and immunogen design.•Machine learning predicts antigenic epitopes and assesses immunogenicity.•Generative models and molecular dynamics enhance immunogen stability and coverage.•Novel adjuvants are identified via AI-driven molecular interactions analysis.•AI enhances vaccine trial efficiency with predictive analytics.
ISSN:0167-7012
1872-8359
1872-8359
DOI:10.1016/j.mimet.2024.106998