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Testing Acetylcholine Followed by Adenosine for Invasive Diagnosis of Coronary Vasomotor Disorders
Published on: February 3, 2021
Is heart rate response a reliable marker of adenosine-induced coronary hyperemia?
Bhavik N Modi1, Haseeb Rahman1, Sara Abou Sherif1
1NIHR Biomedical Research Centre and British Heart Foundation Centre of Excellence, School of Cardiovascular Medicine and Sciences, St Thomas' Campus, King's College London, London, UK.
Insights
Non-invasive markers like heart rate changes do not reliably indicate coronary hyperemia, a crucial measure for diagnosing chest pain. A validated pressure-wire method using specific waveform characteristics is more accurate for assessing blood flow during cardiac stress tests.
Area of Science:
- Cardiology
- Diagnostic Imaging
- Hemodynamics
Background:
- Ischemia-guided management of chest pain relies on assessing coronary hyperemia, defined as increased blood flow to the heart muscle.
- Adenosine-induced coronary hyperemia is critical for both invasive and non-invasive cardiac diagnostic tests.
- Current non-invasive methods often use surrogate markers like heart rate increases, which lack formal validation.
Purpose of the Study:
- To validate pressure-wire markers against Doppler flow measurements for identifying coronary hyperemia.
- To determine if non-invasive indices, including heart rate, reliably correlate with achieved coronary hyperemia.
Main Methods:
- Doppler flow measurements were used to validate pressure-wire markers of hyperemia in 53 patients.
- 265 pressure-wire traces were analyzed using validated parameters to assess correlations with non-invasive markers.
- Key pressure-derived markers included specific features of the distal pressure waveform and pressure gradients.
Main Results:
- The most reliable pressure-wire indicators of hyperemia were specific waveform characteristics (ventriculisation, loss of dicrotic notch, pressure separation).
- Non-invasive markers such as changes in heart rate (p=0.77), blood pressure (p=0.60), and rate-pressure product (p=0.86) poorly correlated with hyperemia.
- Only 37.3% of patients achieved a ≥10% heart rate increase, a common threshold for assessing hyperemia.
Conclusions:
- A validated pressure-wire method accurately identifies coronary hyperemia in the catheter laboratory.
- Non-invasive parameters, particularly heart rate changes, are unreliable predictors of adenosine-induced coronary hyperemia.
- Findings challenge the reliance on surrogate non-invasive markers in stress imaging protocols.
Abstract:
Introduction Growing evidence supports ischemia-guided management of chest pain, with invasive and non-invasive tests reliant upon achieving adenosine-induced coronary hyperemia (defined as increased blood flow to an organ's perfusion bed). In the non-invasive setting, surrogate markers of hyperemia, such as increases in heart rate, are often used, despite not being formally validated. We tested whether heart rate and other non-invasive indices are reliable markers of coronary hyperemia. Methods The first part involved Doppler flow-based validation of the best pressure-wire markers of hyperemia in 53 patients. Subsequently, using these validated pressure-derived parameters, 265 pressure-wire traces were analysed to determine whether heart rate and other non-invasive parameters correlated with hyperemia. Results In the flow derivation cohort, the best determinant of hyperemia came from having 2 out of 3 of: (1) Ventriculisation of the distal pressure waveform, (2) disappearance of distal dicrotic pressure notch, (3) separation of mean aortic and distal pressures. Within the 244 patients demonstrating hyperemia, non-invasive markers of hyperemia, such as change in heart rate (p = 0.77), blood pressure (p = 0.60) and rate-pressure product (p = 0.86), were poor correlates of coronary hyperemia, with only 37.3% demonstrating a ≥ 10% increase in heart rate that is commonly used to adjudge adenosine-induced hyperemia in the non-invasive setting. Conclusions We demonstrate, by correlation with Doppler-flow data, a validated method of identifying coronary hyperemia within the catheter laboratory using the pressure-wire. We subsequently show that non-invasive parameters, such as heart rate change, are poor predictors of coronary hyperemia during stress imaging protocols that rely upon achieving adenosine-induced hyperemia.
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