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Image-Based Computational Hemodynamics Analysis of Systolic Obstruction in Hypertrophic Cardiomyopathy
Ivan Fumagalli1, Piermario Vitullo1, Christian Vergara2
1MOX, Dipartimento di Matematica, Politecnico di Milano, Milan, Italy.
Insights
Computational analysis of hypertrophic cardiomyopathy (HCM) reveals detailed blood flow and pressure changes. This patient-specific approach aids in classifying HCM and guiding surgical interventions like septal myectomy.
Area of Science:
- Cardiology
- Biomedical Engineering
- Computational Fluid Dynamics
Background:
- Hypertrophic Cardiomyopathy (HCM) involves myocardial thickening, potentially compromising cardiac function and leading to sudden death.
- Hypertrophic Obstructive Cardiomyopathy (HOCM) specifically causes left ventricular outflow tract obstruction due to septal hypertrophy.
Purpose of the Study:
- To computationally analyze intraventricular hemodynamics in patients with various HCM types.
- To quantify the impact of HCM on blood flow and pressure gradients.
- To provide data for guiding septal myectomy surgical treatment.
Main Methods:
- Utilized an image-based computational approach integrating fluid dynamics simulations.
- Reconstructed patient-specific geometric and functional data from cardiac cine-MRI acquisitions.
Main Results:
- Detailed patient-specific analysis of blood velocity, pressure, and stress distribution in HCM.
- Developed a computation-based classification system for HCM patients.
- Demonstrated enhanced understanding of intraventricular blood flow dynamics in HCM.
Conclusions:
- The computational approach offers deeper insights into HCM patho-physiology.
- Patient-specific hemodynamic analysis can complement clinical guidelines for HOCM diagnosis and treatment.
- This method provides valuable information for surgical planning in HCM.
Abstract:
Hypertrophic Cardiomyopathy (HCM) is a pathological condition characterized by an abnormal thickening of the myocardium. When affecting the medio-basal portion of the septum, it is named Hypertrophic Obstructive Cardiomyopathy (HOCM) because it induces a flow obstruction in the left ventricular outflow tract. In any type of HCM, the myocardial function can become compromised, possibly resulting in cardiac death. In this study, we investigated with computational analysis the hemodynamics of patients with different types of HCM. The aim was quantifying the effects of this pathology on the intraventricular blood flow and pressure gradients, and providing information potentially useful to guide the indication and the modality of the surgical treatment (septal myectomy). We employed an image-based computational approach, integrating fluid dynamics simulations with geometric and functional data, reconstructed from standard cardiac cine-MRI acquisitions. We showed that with our approach we can better understand the patho-physiological behavior of intraventricular blood flow dynamics due to the abnormal morphological and functional aspect of the left ventricle. The main results of our investigation are: (a) a detailed patient-specific analysis of the blood velocity, pressure and stress distribution associated to HCM; (b) a computation-based classification of patients affected by HCM that can complement the current clinical guidelines for the diagnosis and treatment of HOCM.
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