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PubMed · 9855432

Measuring protection: efficacy versus effectiveness.

Abstract

In the clinical development of a vaccine, an efficacy study asks the question, "Does the vaccine work?" In contrast, an effectiveness study asks the question "Does vaccination help people?". In general, vaccine development proceeds from a study of immunogenicity to a randomized controlled trial that determines vaccine efficacy under ideal conditions. Efficacy studies, however, have several limitations. In an immunogenicity study, when a vaccine is given according to different schedules, the object of the study is not the vaccine itself but the schedules; i.e., what is important is not the "relative immunogenicity" of the vaccine, but which schedule is more protective given the occurrence of the disease that is to be prevented. Furthermore, a clinical trial of vaccine efficacy is unable to predict accurately the level of protection that will be achieved in public health practice. Vaccination effectiveness can be evaluated in a prospective clinical trial, although few such studies have been undertaken. Effectiveness is usually assessed retrospectively, sometimes using a screening test, but more often in a case-control or cohort study. In these studies, rigorous risk adjustment is necessary to ensure the comparability of study populations. Retrospective studies also provide a means for assessing serious but rare vaccine-associated adverse events, an undertaking often needed to maintain public confidence in vaccination programmes. Many vaccines currently under development will be replacement rather than new vaccines, and they are unlikely to be evaluated in traditional efficacy trials. In future years, effectiveness studies, some of them using large administrative databases, will become increasingly important features of vaccine development and the formulation of public policy for immunization.

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BibTeXRIS

D S Fedson. 1998. Measuring protection: efficacy versus effectiveness.. https://pubmed.ncbi.nlm.nih.gov/9855432/

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Insulin-like growth factor I, IGF-binding protein 3, and lung cancer risk in a prospective study of men in China.

BACKGROUND: Insulin-like growth factor I (IGF-I) stimulates cell proliferation and inhibits apoptosis in the lung and other tissues by interacting with the IGF-I receptor. The major binding protein for IGF-I, insulin-like growth factor-binding protein 3 (IGFBP-3), modulates the effects of IGF-I but also inhibits cell growth and induces apoptosis independent of IGF-I and its receptor. In a prospective study of men in Shanghai, China, we examined the association between serum levels of IGF-I and IGFBP-3 and the subsequent risk of lung cancer. METHODS: From 1986 to 1989, serum was collected from 18,244 men aged 45-64 years living in Shanghai without a history of cancer. We analyzed IGF-I and IGFBP-3 levels in serum from 230 case patients who developed incident lung cancer during follow-up and from 740 control subjects. RESULTS: Among 230 case patients and 659 matched control subjects, increased IGF-I levels were not associated with increased risk of lung cancer. However, for subjects in the highest quartile relative to the lowest quartile of IGFBP-3, the odds ratio (OR) for lung cancer, adjusted for smoking and IGF-I, was 0.50 (95% confidence interval [CI] = 0.25 to 1.02). When the analysis was restricted to ever smokers (184 case patients and 344 matched control subjects), the OR for lung cancer in men in the highest quartile of IGFBP-3 relative to those in the lowest quartile, adjusted for smoking and IGF-I, was 0.41 (95% CI = 0.18 to 0.92). CONCLUSIONS: In this prospective study of Chinese men, higher serum levels of IGF-I did not increase the risk of lung cancer. However, subjects with higher serum levels of IGFBP-3 were at reduced risk of lung cancer. This finding is consistent with experimental data that indicate that IGFBP-3 can inhibit cellular proliferation and induce apoptosis independent of IGF-I and the IGF-I receptor.

Case-Control Studies↗