Cost-effectiveness analysis of catch-up hepatitis A vaccination among unvaccinated/partially-vaccinated children
Abigail Hankin-Wei1, David B Rein2, Alfonso Hernandez-Romieu3
1Emory University School of Medicine, United States.
Insights
A catch-up hepatitis A (HepA) vaccination for children is not cost-effective under current low disease incidence. This strategy becomes more favorable only if hepatitis A virus (HAV) cases significantly increase.
Area of Science:
- Public Health
- Epidemiology
- Health Economics
Background:
- Routine hepatitis A (HepA) vaccination is recommended for children aged 12-23 months in the US.
- A significant portion of US children remain unvaccinated and susceptible to hepatitis A virus (HAV).
- Economic modeling is used to evaluate the cost-effectiveness of catch-up HepA vaccination strategies.
Purpose of the Study:
- To assess the cost-effectiveness of a one-time catch-up hepatitis A vaccination recommendation for children.
- To compare outcomes of catch-up vaccination at various ages against the current routine vaccination schedule.
Main Methods:
- A Markov model simulating HAV infection from birth to age 95 was developed.
- The model compared health and economic outcomes of catch-up vaccination interventions (ages 2-17) versus no catch-up intervention.
- Cost-effectiveness was analyzed using metrics like Incremental Cost-Effectiveness Ratio (ICER) per QALY gained.
Main Results:
- Catch-up vaccination would decrease infections by 741 but increase vaccine doses by 556,989 over a lifetime.
- Net costs would increase by $10.2 million ($2.38 per person).
- The ICER for catch-up vaccination at age 12 was $189,000 per QALY gained, with the most favorable outcome at this age.
Conclusions:
- Catch-up HepA vaccination is less cost-effective than many other vaccine interventions at current low HAV incidence.
- Cost-effectiveness improves significantly if HAV incidence rises to approximately 5.0 cases per 100,000 population.
- HepA catch-up vaccination becomes cost-effective at a $50,000/QALY threshold only under conditions of increased disease incidence.
Background:
Since 2006, the US Centers for Disease Control and Prevention has recommended hepatitis A (HepA) vaccination routinely for children aged 12-23months to prevent hepatitis A virus (HAV) infection. However, a substantial proportion of US children are unvaccinated and susceptible to infection. We present results of economic modeling to assess whether a one-time catch-up HepA vaccination recommendation would be cost-effective.
Methods:
We developed a Markov model of HAV infection that followed a single cohort from birth through death (birth to age 95years). The model compared the health and economic outcomes from catch-up vaccination interventions for children at target ages from two through 17years vs. outcomes resulting from maintaining the current recommendation of routine vaccination at age one year with no catch-up intervention.
Results:
Over the lifetime of the cohort, catch-up vaccination would reduce the total number of infections relative to the baseline by 741 while increasing doses of vaccine by 556,989. Catch-up vaccination would increase net costs by $10.2million, or $2.38 per person. The incremental cost of HepA vaccine catch-up intervention at age 10years, the midpoint of the ages modeled, was $452,239 per QALY gained. Across age-cohorts, the cost-effectiveness of catch-up vaccination is most favorable at age 12years, resulting in an Incremental Cost-Effectiveness Ratio of $189,000 per QALY gained.
Conclusions:
Given the low baseline of HAV disease incidence achieved by current vaccination recommendations, our economic model suggests that a catch-up vaccination recommendation would be less cost-effective than many other vaccine interventions, and that HepA catch-up vaccination would become cost effective at a threshold of $50,000 per QALY only when incidence of HAV rises about 5.0 cases per 100,000 population.
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