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Updated: Apr 20, 2026

Vaccinia Virus Infection & Temporal Analysis of Virus Gene Expression: Part 2
Published on: April 10, 2009
Measles virus genetic evolution throughout an imported epidemic outbreak in a highly vaccinated population
Miguel Ángel Muñoz-Alía1, Rafael Fernández-Muñoz1, José María Casasnovas2
1Virology Unit and National Reference Laboratory for Measles, Ramón y Cajal Hospital, Madrid, Spain.
Abstract:
Measles virus circulates endemically in African and Asian large urban populations, causing outbreaks worldwide in populations with up-to-95% immune protection. We studied the natural genetic variability of genotype B3.1 in a population with 95% vaccine coverage throughout an imported six month measles outbreak. From first pass viral isolates of 47 patients we performed direct sequencing of genomic cDNA. Whilst no variation from index case sequence occurred in the Nucleocapsid gene hyper-variable carboxy end, in the Hemagglutinin gene, main target for neutralizing antibodies, we observed gradual nucleotide divergence from index case along the outbreak (0% to 0.380%, average 0.138%) with the emergence of transient and persistent non-synonymous and synonymous mutations. Little or no variation was observed between the index and last outbreak cases in Phosphoprotein, Nucleocapsid, Matrix and Fusion genes. Most of the H non-synonymous mutations were mapped on the protein surface near antigenic and receptors binding sites. We estimated a MV-Hemagglutinin nucleotide substitution rate of 7.28 × 10-6 substitutions/site/day by a Bayesian phylogenetic analysis. The dN/dS analysis did not suggest significant immune or other selective pressures on the H gene during the outbreak. These results emphasize the usefulness of MV-H sequence analysis in measles epidemiological surveillance and elimination programs, and in detection of potentially emergence of measles virus neutralization-resistant mutants.
Insights
Measles virus genetic analysis reveals gradual changes in the Hemagglutinin gene during an outbreak, even with high vaccine coverage. This highlights the importance of tracking viral mutations for effective measles surveillance and control.
Area of Science:
- Virology
- Epidemiology
- Genetics
Background:
- Measles virus (MV) outbreaks occur globally, even in highly vaccinated populations.
- Understanding MV genetic variability is crucial for effective public health interventions.
Purpose of the Study:
- To investigate the natural genetic variability of measles virus genotype B3.1 during a six-month outbreak.
- To analyze mutations in the Hemagglutinin (H) gene, a key target for neutralizing antibodies.
Main Methods:
- Direct sequencing of genomic cDNA from 47 patient isolates.
- Bayesian phylogenetic analysis to estimate substitution rates.
- dN/dS analysis to assess selective pressures.
Main Results:
- No significant variation was observed in the Nucleocapsid gene.
- Gradual nucleotide divergence (0% to 0.380%) occurred in the Hemagglutinin (H) gene, with emergent mutations near antigenic sites.
- Estimated MV-H nucleotide substitution rate of 7.28 × 10-6 substitutions/site/day.
- No significant immune or selective pressures detected on the H gene.
Conclusions:
- MV-H sequence analysis is valuable for measles epidemiological surveillance and elimination programs.
- Tracking H gene mutations can help detect potential emergence of measles virus neutralization-resistant mutants.
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