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Author Spotlight: Enhancing Coronary Artery Revascularization
Published on: September 15, 2023
Characterizing Mechanisms of Ischemia in Patients With Myocardial Bridges
Aish Sinha1, Haseeb Rahman1, Ronak Rajani2
1British Heart Foundation Centre of Excellence, School of Cardiovascular Medicine and Sciences, King's College London, United Kingdom (A.S., H.R., O.M.D., M.L.K., H.M., S.M.E., H.E., A.M.S., A.C., A.J.W., M.M., D.P.).
Insights
Myocardial bridges (MBs) impair coronary perfusion during exercise due to reduced wave energy. This study identifies distinct ischemic substrates in patients with MBs, highlighting potential new treatment targets for angina.
Area of Science:
- Cardiology
- Cardiovascular Physiology
- Medical Diagnostics
Background:
- Myocardial bridges (MBs) are common and linked to ischemic syndromes.
- Investigating ischemia in patients with angina and nonobstructive coronary arteries with MBs is crucial.
Purpose of the Study:
- To determine the underlying causes of ischemia in patients experiencing angina with nonobstructive coronary arteries and a myocardial bridge in the left anterior descending artery.
- To compare these patients with those having angina but no MB, including groups with coronary microvascular disease (CMD) and normal coronary flow reserve.
Main Methods:
- Intracoronary pressure and flow measurements during rest, exercise, and adenosine infusion.
- Coronary wave intensity analysis and assessment of perfusion efficiency.
- Evaluation of epicardial endothelial function using acetylcholine and comparison between MB, CMD, and reference groups.
Main Results:
- Patients with MB showed decreased perfusion efficiency during exercise, driven by diminished accelerating wave energy in early systole.
- Coronary microvascular disease (CMD) also impaired perfusion efficiency, but driven by microcirculation.
- Epicardial endothelial dysfunction was more prevalent in the MB group (54%).
Conclusions:
- Myocardial bridges significantly impair coronary perfusion efficiency during exercise.
- Distinct mechanisms of ischemia, including endothelial and microvascular dysfunction, were identified in MB patients.
- These findings suggest specific therapeutic targets for managing ischemia related to myocardial bridges.
Background:
Myocardial bridges (MBs) are prevalent and can be associated with acute and chronic ischemic syndromes. We sought to determine the substrates for ischemia in patients with angina with nonobstructive coronary arteries and a MB in the left anterior descending artery.
Methods:
Patients with angina with nonobstructive coronary arteries underwent the acquisition of intracoronary pressure and flow during rest, supine bicycle exercise, and adenosine infusion. Coronary wave intensity analysis was performed, with perfusion efficiency defined as accelerating wave energy/total wave energy (%). Epicardial endothelial dysfunction was defined as a reduction in epicardial vessel diameter ≥20% in response to intracoronary acetylcholine infusion. Patients with angina with nonobstructive coronary arteries and a MB were compared with 2 angina with nonobstructive coronary arteries groups with no MB: 1 with coronary microvascular disease (CMD: coronary flow reserve, <2.5) and 1 with normal coronary flow reserve (reference: coronary flow reserve, ≥2.5).
Results:
Ninety-two patients were enrolled in the study (30 MB, 33 CMD, and 29 reference). Fractional flow reserve in these 3 groups was 0.86±0.05, 0.92±0.04, and 0.94±0.05; coronary flow reserve was 2.5±0.5, 2.0±0.3, and 3.2±0.6. Perfusion efficiency increased numerically during exercise in the reference group (65±9%-69±13%; P=0.063) but decreased in the CMD (68±10%-50±10%; P<0.001) and MB (66±9%-55±9%; P<0.001) groups. The reduction in perfusion efficiency had distinct causes: in CMD, this was driven by microcirculation-derived energy in early diastole, whereas in MB, this was driven by diminished accelerating wave energy, due to the upstream bridge, in early systole. Epicardial endothelial dysfunction was more common in the MB group (54% versus 29% reference and 38% CMD). Overall, 93% of patients with a MB had an identifiable ischemic substrate.
Conclusions:
MBs led to impaired coronary perfusion efficiency during exercise, which was due to diminished accelerating wave energy in early systole compared with the reference group. Additionally, there was a high prevalence of endothelial and microvascular dysfunction. These ischemic mechanisms may represent distinct treatment targets.
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