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In Vivo Quantitative Assessment of Myocardial Structure, Function, Perfusion and Viability Using Cardiac Micro-computed Tomography
Published on: February 16, 2016
Rate dependent left bundle branch block: the pattern of myocardial perfusion SPECT
Ali Gholamrezanezhad1, Sahar Mirpour, Farhad Sarabandi
1Research Institute for Nuclear Medicine, Tehran University of Medical Sciences, Shariati Hospital, Tehran, Iran.
Insights
Myocardial perfusion SPECT in rate-dependent left bundle branch block (LBBB) showed no consistent reversible defects. Exercise treadmill tests (ETT) may be safely continued in these patients.
Area of Science:
- Cardiology
- Nuclear Medicine
- Diagnostic Imaging
Background:
- Assessing myocardial perfusion in patients with left bundle branch block (LBBB) can be challenging.
- Rate-dependent LBBB presents unique diagnostic considerations for exercise stress testing.
Observation:
- Four patients with rate-dependent LBBB underwent exercise treadmill tests (ETT) and myocardial perfusion single-photon emission computed tomography (SPECT).
- Patients experienced atypical chest pain or dyspnea on exertion.
- Maximal stress tests were safely achieved without adverse cardiac events.
Findings:
- Myocardial perfusion SPECT revealed no evidence of reversible perfusion defects in most patients.
- One patient with a history of exercise-induced LBBB showed nonreversible defects and mild left ventricular dilatation.
- False-positive defects, common in sustained LBBB, were not consistently observed in rate-dependent LBBB.
Implications:
- Exercise treadmill testing may be safely continued in patients with rate-dependent LBBB undergoing myocardial perfusion scintigraphy.
- Myocardial perfusion SPECT findings in rate-dependent LBBB may differ from those in sustained LBBB.
- Further research with larger cohorts is needed to confirm these observations.
Abstract:
We report myocardial perfusion SPECT pattern in four subsequent patients with rate dependent left bundle branch block (LBBB). Three females and one male (aged 48, 51, 63 and 67 years) were studied. None of the patients had history of typical chest pain and all suffered from atypical chest pain or dyspnea on exertion. All patients were tested for baseline and serial heart rate, blood pressure, and electrocardiogram recordings. The exercise treadmill tests (ETT) were carried out under the strict supervision of a cardiologist, a nuclear medicine physician and close availability of an expert cardio-pulmonary resuscitation team and cardiac care unit within just few seconds. Maximal stress test (at least 85% of calculated heart rate, following development of LBBB) was achieved in all four patients according to standard Bruce protocol. No adverse cardiac events were noted and all ETT stress protocols terminated completely and safely. Myocardial perfusion SPECT imaging showed no evidence of reversible perfusion defects. The only patient with past history of exercise induced LBBB showed nonreversible perfusion defects in the septal and anteroseptal regions and mild LV cavity dilatation. The limited number of patients enrolled in our study does not allow us to draw a definite conclusion. Despite the presence of false-positive defects in myocardial perfusion SPECT in patients with sustained LBBB, such a finding is not a consistent finding in patients with rate dependent or exercised-induced LBBB, unlike that which we expected to see. Maybe it is possible to continue ETT for those patients undergoing myocardial perfusion scintigraphy and developing rate dependent LBBB.
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