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AI-enabled viral genomics: from virus discovery to host prediction and emerging variant forecasting.

Abstract

The rapid expansion of metagenomic sequencing has generated vast repositories of viral sequence data that far outpace our capacity to interpret them using conventional approaches. Highly divergent sequences, sparse functional annotation, and taxonomically uneven sampling present fundamental challenges for reference-dependent methods, which lose sensitivity precisely for novel and understudied viruses with high public health relevance. Artificial intelligence (AI) provides a new avenue to address these challenges by enabling predictive inference from viral genomes and proteins while reducing dependence on sequence similarity. In this Review, we discuss representative advances in AI for virus discovery, taxonomic classification and functional annotation, prediction of host range and zoonotic potential, and efforts toward forecasting emerging variants. These advances are transforming viral genomics from a largely descriptive discipline into one with increasing predictive capability. We also critically assess the major challenges that constrain current approaches, including the availability of high-quality and representative datasets, rigorous model evaluation, biological interpretability and responsible governance for increasingly capable AI models.

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BibTeXRIS

Jincan Ke, Heng Rong, Yin Chen, Xiaojuan Zhu, Qiao Qiao, Yiyue Ge, Lunbiao Cui. 2026-08-19. AI-enabled viral genomics: from virus discovery to host prediction and emerging variant forecasting.. https://doi.org/10.1016/j.virol.2026.111055

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