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The cost effectiveness of combination antiretroviral therapy for HIV disease
K A Freedberg1, E Losina, M C Weinstein
1Division of General Internal Medicine and the Partners AIDS Research Center, Massachusetts General Hospital and Harvard Medical School, Boston 02114, USA. kfreedberg@partners.org
Insights
Combination antiretroviral therapy for human immunodeficiency virus (HIV) significantly improves life expectancy and quality of life. This three-drug treatment is a cost-effective use of healthcare resources, offering substantial clinical benefits.
Area of Science:
- Infectious Diseases
- Public Health
- Health Economics
Background:
- Combination antiretroviral therapy (cART) with three or more drugs is standard for HIV in the US.
- Estimating the clinical benefits and cost-effectiveness of these regimens is crucial.
Purpose of the Study:
- To estimate the clinical benefits and cost-effectiveness of three-drug antiretroviral regimens for HIV infection.
Main Methods:
- A mathematical simulation model of HIV disease progression was developed.
- Model inputs included CD4 cell count and HIV RNA levels, with data from clinical trials and cost surveys.
- Outcomes measured were life expectancy, quality-adjusted life expectancy, lifetime costs, and cost-effectiveness.
Main Results:
- Three-drug therapy increased quality-adjusted life expectancy by 1.53 to 2.91 years for patients with a mean CD4 count of 87/mm³.
- Lifetime costs increased from $45,460 to $77,300 compared to no therapy.
- The incremental cost-effectiveness ratio ranged from $13,000 to $23,000 per quality-adjusted year of life gained.
Conclusions:
- Treatment of HIV infection with three antiretroviral drugs is a cost-effective allocation of resources.
- Initial CD4 cell count and drug costs significantly influence the cost-effectiveness outcomes.
Background:
Combination antiretroviral therapy with a combination of three or more drugs has become the standard of care for patients with human immunodeficiency virus (HIV) infection in the United States. We estimated the clinical benefits and cost effectiveness of three-drug antiretroviral regimens.
Methods:
We developed a mathematical simulation model of HIV disease, using the CD4 cell count and HIV RNA level as predictors of the progression of disease. Outcome measures included life expectancy, life expectancy adjusted for the quality of life, lifetime direct medical costs, and cost effectiveness in dollars per quality-adjusted year of life gained. Clinical data were derived from major clinical trials, including the AIDS Clinical Trials Group 320 Study. Data on costs were based on the national AIDS Cost and Services Utilization Survey, with drug costs obtained from the Red Book.
Results:
For patients similar to those in the AIDS Clinical Trials Group 320 Study (mean CD4 cell count, 87 per cubic millimeter), life expectancy adjusted for the quality of life increased from 1.53 to 2.91 years, and per-person lifetime costs increased from $45,460 to $77,300 with three-drug therapy as compared with no therapy. The incremental cost per quality-adjusted year of life gained, as compared with no therapy, was $23,000. On the basis of additional data from other major studies, the cost-effectiveness ratio for three-drug therapy ranged from $13,000 to $23,000 per quality-adjusted year of life gained. The initial CD4 cell count and drug costs were the most important determinants of costs, clinical benefits, and cost effectiveness.
Conclusions:
Treatment of HIV infection with a combination of three antiretroviral drugs is a cost-effective use of resources.
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