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Mid-systolic drop in left ventricular ejection velocity in obstructive hypertrophic cardiomyopathy--the lobster claw
M V Sherrid1, D Z Gunsburg, G Pearle
1Columbia University College of Physicians and Surgeons, Division of Cardiology, St. Luke's-Roosevelt Hospital Center, New York, NY, USA.
Insights
In obstructive hypertrophic cardiomyopathy, a mid-systolic drop in left ventricular ejection velocity indicates obstruction. This velocity change correlates with outflow tract pressure gradients and mitral-septal contact, confirming true obstruction.
Area of Science:
- Cardiology
- Echocardiography
- Physiology
Background:
- Obstructive hypertrophic cardiomyopathy (oHCM) can present with a characteristic mid-systolic drop in left ventricular ejection velocity.
- This phenomenon is often associated with significant outflow tract obstruction.
Purpose of the Study:
- To investigate the relationship between the mid-systolic drop in left ventricular ejection velocity and the severity of left ventricular outflow tract (LVOT) obstruction in patients with oHCM.
- To determine the diagnostic value of this velocity drop in identifying true obstruction.
Main Methods:
- Analysis of 43 echocardiographic examinations from 27 patients with oHCM.
- Measurement of left ventricular (LV) cavity pulsed-wave Doppler tracings and LV outflow tract continuous-wave Doppler tracings.
- Correlation of velocity changes with M-mode mitral-septal contact and pressure gradients.
Main Results:
- Exams with a mid-systolic drop showed significantly higher mean LVOT pressure gradients (90 +/- 6 mmHg) compared to those without (29 +/- 4 mmHg).
- The mid-systolic drop resolved after medical elimination of obstruction.
- A strong temporal correlation was found between the velocity drop nadir and peak LVOT velocity (r=0.99), and between the velocity fall onset and mitral-septal contact (r=0.95).
Conclusions:
- The mid-systolic drop in LV ejection velocity is a direct consequence of impedance to ejection, signifying true obstruction in oHCM.
- The observed velocity disparity reflects a dynamic narrowing of the outflow tract due to a pressure-dependent feedback loop involving the mitral valve and septum.
Unlabelled:
In many patients with obstructive hypertrophic cardiomyopathy, an abrupt mid-systolic drop in left ventricular ejection velocity can be detected. We analyzed 27 patients with obstructive hypertrophic cardiomyopathy who had 43 echocardiographic examinations (mean gradient 53 +/- 6 mm Hg). Exams showing a mid-systolic drop had higher mean outflow tract pressure gradients (90 +/- 6 compared with 29 +/- 4 mm Hg, p < 0.001). After medical elimination of obstruction, the mid-systolic drop was no longer seen. We measured 105 pulsed-wave Doppler tracings in the left ventricular cavity and compared them with 90 continuous-wave tracings through the outflow tract. There was a close temporal correlation between the nadir of the left ventricular velocity drop and the peak continuous-wave left ventricular outflow tract velocity (r = 0.99). There was also a close temporal correlation between the onset of the fall in pulsed velocity and the onset of M-mode mitral-septal contact (r = 0.95).
Conclusions:
The mid-systolic drop in left ventricular velocity is due to impedance to ejection and provides evidence of true obstruction. As left ventricular ejection velocity falls to its mid-systolic nadir because of impedance of ejection, velocity downstream in the left ventricular outflow tract actually rises to its peak. This disparity in the two velocities, deceleration in the left ventricular cavity and acceleration in the left ventricular outflow tract, indicates that the outflow orifice is progressively narrowed over time as the mitral valve is forced into the septum by the rising pressure difference. The obstruction phase is best described as a time-dependent, amplifying feedback loop. The orifice narrows over time because of the rising pressure difference; the pressure difference rises over time because of the narrowing orifice.
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