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Economics of myocardial perfusion imaging in Europe--the EMPIRE Study
S R Underwood1, B Godman, S Salyani
1National Heart and Lung Institute, Imperial College School of Medicine, London, U.K.
Insights
Myocardial perfusion imaging strategies are more cost-effective and equally effective for diagnosing coronary artery disease compared to strategies without it. Patient outcomes over two years remain consistent across all diagnostic approaches.
Area of Science:
- Cardiology
- Diagnostic Imaging
- Health Economics
Background:
- Physicians vary in their use of myocardial perfusion imaging for suspected coronary artery disease.
- Clinical data on cost-effective strategies are limited, despite models suggesting routine use is economical.
Purpose of the Study:
- To assess the cost-effectiveness of four diagnostic strategies for new cases of suspected coronary artery disease.
- To compare these strategies between centers that routinely use myocardial perfusion imaging and those that do not.
Main Methods:
- A retrospective study of 396 patients across eight hospitals in four countries (France, Germany, Italy, UK).
- Hospitals were categorized as regular users or non-users of myocardial perfusion imaging.
- Data collected on presentation, investigations, management, and 2-year clinical outcomes.
- Four diagnostic strategies were evaluated: ECG/coronary angiography; ECG/MPI/coronary angiography; MPI/coronary angiography; and coronary angiography alone.
Main Results:
- Strategies incorporating myocardial perfusion imaging (MPI) were cheaper for diagnosis (409-460 Pounds) than coronary angiography alone (1253 Pounds).
- Overall 2-year costs were lower with MPI strategies (3768-3842 Pounds) compared to coronary angiography alone (5599 Pounds).
- Diagnostic accuracy for coronary artery disease was higher with MPI strategies (0.97) versus ECG alone (0.85).
- Prognostic power was higher in MPI centers, with no significant difference in 2-year cardiac events or symptomatic status between strategies or centers.
Conclusions:
- Diagnostic strategies employing myocardial perfusion imaging are more cost-effective for both diagnosis and overall 2-year management.
- These MPI strategies demonstrate equal effectiveness in terms of patient outcomes compared to non-MPI strategies.
- Routine use of myocardial perfusion imaging in diagnostic pathways appears to be a cost-effective approach without compromising patient outcomes.
Background:
Physicians use myocardial perfusion imaging to a variable extent in patients presenting with possible coronary artery disease. There are few clinical data on the most cost-effective strategy although computer models predict that routine use of myocardial perfusion imaging is cost-effective.
Objectives:
To measure the cost-effectiveness of four diagnostic strategies in patients newly presenting with possible coronary artery disease, and to compare cost-effectiveness in centres that routinely use myocardial perfusion imaging with those that do not.
Methods:
We have studied 396 patients presenting to eight hospitals for the diagnosis of coronary artery disease. The hospitals were regular users or non-users of myocardial perfusion imaging with one of each in four countries (France, Germany, Italy, United Kingdom). Information was gathered retrospectively on presentation, investigations, complications, and clinical management, and patients were followed-up for 2 years in order to assess outcome. Pre- and post-test probabilities of coronary artery disease were computed for diagnostic tests and each test was also assigned as diagnostic or part of management. Diagnostic strategies defined were: 1: Exercise electrocardiogram/coronary angiography, 2: exercise electrocardiogram/myocardial perfusion imaging/coronary angiography, 3: myocardial perfusion imaging/coronary angiography, 4: coronary angiography. Primary outcome measures were the cost and accuracy of diagnosis, the cost of subsequent management, and clinical outcome. Secondary measures included prognostic power, normal angiography rate, and rate of angiography not followed by revascularization.
Results:
Mean diagnostic costs per patient were: strategy 1: 490 Pounds, 2: 409 Pounds, 3: 460 Pounds, 4: 1253 Pounds (P < 0.0001). Myocardial perfusion imaging users: 529 Pounds, non-users 667 Pounds (P = 0.006). Mean probability of the presence of coronary artery disease when the final clinical diagnosis was coronary artery disease present were, strategy 1: 0.85, 2: 0.82, 3: 0.97, 4: 1.0 (P < 0.0001), users 0.93, non-users 0.88 (P = 0.02), and when coronary artery disease was absent, 1: 0.26, 2: 0.22, 3: 0.16, 4: 0.0 (P < 0.0001), users 0.21, non-users 0.20 (P = ns). Total 2-year costs (coronary artery disease present/absent) were: strategy 1: 4453 Pounds/710 Pounds, 2: 3842 Pounds/478 Pounds, 3: 3768 Pounds/574 Pounds, 4: 5599 Pounds/1475 Pounds (P < 0.05/0.0001), users: 5563 Pounds/623 Pounds, non-users: 5428 Pounds/916 Pounds (P = ns/0.001). Prognostic power at diagnosis was higher (P < 0.0001) and normal coronary angiography rate lower (P = 0.07) in the scintigraphic centres and strategies. Numbers of soft and hard cardiac events over 2 years and final symptomatic status did not differ between strategy or centre.
Conclusion:
Investigative strategies using myocardial perfusion imaging are cheaper and equally effective when compared with strategies that do not use myocardial perfusion imaging, both for cost of diagnosis and for overall 2 year management costs. Two year patient outcome is the same.
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