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The Value of Cardiopulmonary Exercise Testing in Predicting the Severity of Coronary Artery Disease
Wanjun Liu1,2, Xiaolei Liu1,2, Tao Liu1
1Department of Cardiology, Tongji Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan 430030, China.
Insights
Lower cardiorespiratory fitness (CRF) is linked to more severe coronary artery disease (CAD). Cardiopulmonary exercise testing (CPET) effectively assesses CRF and predicts CAD severity alongside clinical risk factors.
Area of Science:
- Cardiology
- Exercise Physiology
- Diagnostic Medicine
Background:
- Limited quantitative studies exist on the relationship between coronary artery disease (CAD) and cardiorespiratory fitness (CRF).
- Cardiopulmonary exercise testing (CPET) is a key method for measuring CRF.
Purpose of the Study:
- To investigate the association between CRF and CAD severity using comprehensive metrics.
- To affirm the predictive value of CPET in assessing CAD severity.
Main Methods:
- 280 patients with coronary angiography underwent CPET.
- CRF measured via peak oxygen uptake (VO2@peak) and oxygen uptake at anaerobic threshold (VO2@AT).
- CAD severity assessed using quantitative flow ratio (QFR), number of stenotic coronary arteries (SCA), and Gensini score.
Main Results:
- VO2@AT and VO2@peak inversely associated with QFR.
- CRF parameters (VO2@AT, VO2@peak, VO2/kg@peak) associated with the number of SCAs.
- CRF parameters (VO2@AT, VO2/kg@AT, VO2@peak, VO2/kg@peak) associated with Gensini score.
Conclusions:
- A strong inverse association exists between CRF and CAD severity.
- Combining clinical risk factors with CRF (measured by CPET) effectively predicts CAD severity.
Abstract:
Background: There have been a limited number of quantitative studies on the relationship between coronary artery disease (CAD) and cardiorespiratory fitness (CRF), as measured by cardiopulmonary exercise testing (CPET). Thus, we aimed to investigate the association between CRF and the severity of coronary artery disease from the most comprehensive perspective possible, and to affirm the predictive value of CPET in the severity assessment of CAD. Methods: Our study included 280 patients with coronary angiography, who had undergone CPET in Tongji Hospital. The patients' CRF was measured through their peak oxygen uptake (VO2@peak), their oxygen uptake at the anaerobic threshold (VO2@AT) and through other parameters of CPET on a bicycle ergometer. The severity of the coronary artery disease was assessed in the following three layers: functionally significant lesions (quantitative flow ratio [QFR] ≤ 0.8), the number of stenotic coronary arteries (SCA, stenosis ≥ 50%) and the Gensini score. The correlation analyses were carried out between the CRF and the severity of the coronary artery disease. A ROC curve was plotted, and the AUC was calculated to distinguish the severe CAD and the non-severe CAD patients, as measured by the QFR, the number of SCA, and the Gensini score. Results: The VO2@AT and VO2@peak were inversely associated with the QFR. The VO2@AT, VO2@peak and VO2/kg@peak were associated with the number of SCA. Meanwhile, the VO2@AT, VO2/kg@AT, VO2@peak and VO2/kg@peak were associated with the Gensini score. An ROC analysis proved that a combination of traditional clinical risk factors and the VO2@peak/VO2prediction is valuable in predicting CAD severity. Conclusions: Our study demonstrated a strong and inverse association between CRF and the severity of CAD. A combination of traditional clinical risk factors and CRF is valuable in predicting CAD severity.
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