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.

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