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Updated: Sep 19, 2025

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Isolation of Fidelity Variants of RNA Viruses and Characterization of Virus Mutation Frequency
Published on: June 16, 2011
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Deciphering the Code of Viral-Host Adaptation Through Maximum-Entropy Nucleotide Bias Models.
Andrea Di Gioacchino1, Ivan Lecce1, Benjamin D Greenbaum2,3
1CNRS UMR 8023, Laboratory of Physics of the Ecole Normale Supérieure and PSL Research, Sorbonne Université, Paris, France.
Molecular Biology and Evolution
|June 3, 2025
Summary
Maximum Entropy Nucleotide Bias (MENB) models reveal host-specific viral evolution patterns. These models accurately classify viral families and hosts, offering insights into viral adaptation and sequence design.
Area of Science:
- Virology
- Bioinformatics
- Computational Biology
Background:
- Viral evolution is significantly influenced by host interactions.
- Understanding host-virus dependencies is crucial for predicting viral spread and adaptation.
- Existing methods for viral classification and host prediction can be computationally intensive.
Purpose of the Study:
- To introduce and validate Maximum Entropy Nucleotide Bias (MENB) models for quantitatively characterizing host-virus evolutionary dependence.
- To develop a rapid, interpretable, and robust method for classifying viral families and hosts.
- To explore the potential of MENB models in tracking viral adaptation and designing novel viral sequences.
Main Methods:
- MENB models were developed using single, di-, and tri-nucleotide usage from viral genomic sequences.
- The models were trained to classify viral families (four ssRNA families) and hosts (three hosts).
- Performance was benchmarked against deep neural network methods.
Main Results:
- MENB models successfully decode host and viral family "fingerprints" in nucleotide motif usage.
- The approach accurately predicts viral family and host from genomic sequences, outperforming deep learning methods in speed and interpretability.
- MENB demonstrated strong generalization to new viral families and host taxa, identified intermediate hosts for Influenza A and Human Coronavirus, and detected genomic recombination events.
Conclusions:
- MENB models provide a powerful and efficient tool for understanding host-virus co-evolution.
- The models offer insights into selective pressures driving viral adaptation and can guide the design of viral sequences.
- MENB represents a significant advancement in viral genomics analysis, offering both predictive and explanatory capabilities.
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