Title :
Patient-Specific Virtual Surgery for Right Ventricle Volume Reduction and Patch Design Using MRI-Based 3D FSI RV/LV/Patch Models
Author :
Tang, Dalin ; Yang, Chun ; Geva, Tal ; del Nido, Pedro J.
Author_Institution :
Worcester Polytech. Inst., Worcester
Abstract :
Right ventricular (RV) dysfunction is a common cause of heart failure in patients with congenital heart defects and often leads to impaired functional capacity and premature death. A novel surgical/modeling procedure is proposed to test the hypotheses that a) patient-specific image-based computational modeling can provide accurate information for assessment of RV function and that b) more aggressive scar removal using computer-aided surgery design with optimized post-operative RV morphology and patch design will lead to improved recovery of RV functions. Cardiac Magnetic Resonance (CMR) Imaging studies were performed in a dedicated MRI suite located in the Department of Cardiology at Children´s Hospital Boston to acquire patient-specific ventricle geometry, heart motion, flow velocity, and flow rate for patients needing RV remodeling and pulmonary valve replacement operations before and after scheduled surgeries and healthy volunteers. MRI-based RV/LV combination models with fluid-structure interaction (FSI), RV-LV interaction, and RV-patch interaction were introduced to perform mechanical analysis and assess RV cardiac functions. The patient-specific FSI model (validated by pre-operation data) was used to predict possible outcome of virtual surgeries (i.e., with modified RV morphologies) and good agreement between computational predictions and pre-post operation RV stroke volume and ejection ratio as measured by CMR was found.
Keywords :
biological tissues; biomechanics; biomedical MRI; cardiovascular system; diseases; medical computing; optimisation; surgery; virtual reality; MRI; MRI-based 3D FSI LV patch model; MRI-based 3D FSI RV patch model; RV stroke volume; RV-LV interaction; RV-patch interaction; cardiac magnetic resonance imaging; computer-aided surgery design; congenital heart defect; ejection ratio; flow velocity; fluid-structure interaction; heart failure; heart motion; impaired functional capacity; mechanical analysis; optimized post-operative RV morphology; patient-specific image-based computational modeling; patient-specific ventricle geometry; patient-specific virtual surgery; premature death; pulmonary valve replacement; right ventricle volume reduction; right ventricular dysfunction; Birth disorders; Cardiology; Computational modeling; Design optimization; Heart; Magnetic resonance; Magnetic resonance imaging; Morphology; Surgery; Testing; congenital heart disease; fluid-structure interaction; heart model; right ventricle; tetralogy of fallot;
Conference_Titel :
Complex Medical Engineering, 2007. CME 2007. IEEE/ICME International Conference on
Conference_Location :
Beijing
Print_ISBN :
978-1-4244-1077-4
Electronic_ISBN :
978-1-4244-1078-1
DOI :
10.1109/ICCME.2007.4381712