Aortic distensibility is associated with both resting and hyperemic coronary blood flow

Adam J Nelson1, Rishi Puri2, Stephen J Nicholls3

  • 1Department of Cardiology, Royal Adelaide Hospital, Adelaide, Australia.

Insights

Arterial stiffness, measured by cardiac magnetic resonance-derived aortic distensibility, is linked to coronary blood flow. This association highlights potential new targets for cardiovascular event prediction and antianginal medications.

Area of Science:

  • Cardiovascular physiology
  • Medical imaging
  • Diagnostic cardiology

Background:

  • Arterial stiffness is independently associated with cardiovascular event risk.
  • The underlying mechanism, reduced coronary perfusion, lacks direct confirmation.
  • This study investigates the link between aortic distensibility and coronary blood flow.

Purpose of the Study:

  • To compare invasive coronary blood flow (CBF) measures with cardiac magnetic resonance (CMR)-derived aortic distensibility (AD).
  • To explore the association between large artery stiffness and coronary perfusion in patients with minimal coronary artery disease.

Main Methods:

  • Invasive coronary angiography with Doppler FloWire and microcatheter to measure CBF and coronary flow velocity reserve (CFVR).
  • Cardiac magnetic resonance (CMR) imaging to assess aortic distensibility (AD) at ascending and descending aorta.
  • Correlation analysis between AD measurements and invasive CBF/CFVR parameters.

Main Results:

  • Aortic distensibility (AD) at all measured segments correlated significantly with resting and hyperemic coronary blood flow (CBF).
  • AD showed a stronger correlation with hyperemic CBF and CFVR compared to resting CBF.
  • Significant associations were found even in patients with minimal (<30%) angiographic coronary stenosis.

Conclusions:

  • CMR-derived aortic distensibility is associated with invasive measures of coronary blood flow.
  • Large artery stiffness, indicated by AD, is significantly correlated with hyperemic coronary blood flow.
  • Increased arterial stiffness may be a modifiable target for novel antianginal therapies and cardiovascular event prediction.

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