The effects of intraventricular gradients on left ventricular ejection dynamics
Insights
This study challenges the traditional view of outflow obstruction in hypertrophic cardiomyopathy (HCM). Findings suggest that abnormal pressure gradients do not impede left ventricular outflow in HCM patients.
Area of Science:
- Cardiology
- Cardiovascular Physiology
- Biomedical Engineering
Background:
- Hypertrophic cardiomyopathy (HCM) is often characterized by abnormal pressure gradients in the left ventricle.
- These gradients have traditionally been interpreted as dynamic obstruction to left ventricular outflow.
Purpose of the Study:
- To investigate left ventricular ejection dynamics in patients with HCM.
- To determine if intraventricular pressure gradients impede left ventricular outflow in HCM.
Main Methods:
- Multisensor catheterization was used to record left ventricular and aortic pressures and ascending aortic flow velocity.
- Frame-by-frame angiography analyzed dynamic left ventricular emptying.
- HCM patients were categorized into groups based on the presence and provocation of intraventricular gradients.
Main Results:
- Left ventricular ejection was completed significantly earlier in systole in HCM patients compared to controls, irrespective of gradient presence.
- No significant differences in ejection timing were found between HCM subgroups with varying gradient severities.
- Mitral regurgitation did not influence these ejection dynamics.
Conclusions:
- The traditional definition of outflow obstruction in HCM, based on pressure gradients and mitral valve motion, does not accurately reflect impeded left ventricular outflow.
- Fluid dynamics suggest that true outflow obstruction, in a mechanical sense, may not exist in hypertrophic cardiomyopathy.
Abstract:
The generation of abnormal gradients between the apical cavity and the subaortic valvular region of the left ventricle in patients with hypertrophic cardiomyopathy (HCM) has traditionally been equated to a dynamic obstruction to left ventricular outflow. To examine this concept in more detail, left ventricular ejection dynamics were studied during cardiac catheterization in 30 patients with HCM and 29 patients with no evidence of cardiovascular disease. Using multisensor catheterization techniques, ascending aortic flow velocity and micromanometer left ventricular and aortic pressures were simultaneously recorded during rest (n = 47). Dynamic left ventricular emptying was also analyzed with frame-by-frame angiography (n = 46). The temporal distribution of left ventricular outflow was independently derived from both flow velocity and angiographic techniques. The HCM patients were subdivided into three groups: I, intraventricular gradients at rest (n = 9); II, intraventricular gradients only with provocation (n = 12); III, no intraventricular gradients despite provocation (n = 9). Expressed as a precentage of the available systolic ejection period (%SEP), the time required for ejection of the total stroke volume was (mean +/- 1 S.D.): Group I, 69 +/- 17% (flow), 64 +/- 6% (angio); Group II, 63 +/- 14% (flow), 65 +/- 6% (angio); Group III, 61 +/- 16% (flow), 62 +/- 4% (angio); control group, 90 +/- 5% (flow) 86 +/- 10% (angio). No significant difference was observed between any of the three HCM subgroups, but, compared with the control group, ejection was completed much earlier in systole independent of the presence or absence of intraventricular gradients. The presence of coexisting mitral regurgitation in 12 of the HCM patients did not alter these results. This study demonstrates that 'outflow obstruction', as traditionally defined by the presence of an abnormal intraventricular pressure gradient and systolic anterior motion of the mitral valve, does not impede left ventricular outflow in HCM. In a pure fluid dynamic sense, we believe that outflow obstruction does not exist in this disease entity.
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