Key result
Virtual mitral valve repair using quadrangular resection and ring annuloplasty restored complete leaflet coaptation and eliminated excessive stress concentration in a patient-specific model.
Why the study?
Does personalized virtual mitral valve repair simulation restore leaflet coaptation and normalize stress in a patient-specific model of mitral valve prolapse?
Case Report (n=1)
Does personalized virtual mitral valve repair simulation restore leaflet coaptation and normalize stress in a patient-specific model of mitral valve prolapse?
Personalized computational simulation of mitral valve repair using 3D echocardiography can effectively model postoperative biomechanics and may aid in preoperative surgical planning.
Patient-specific virtual MV repair simulation may guide individualized posterior leaflet resection; hypothesis-generating and requires prospective outcome validation.
Posterior leaflet prolapse following chordal elongation or rupture is one of the primary valvular diseases in patients with degenerative mitral valves (MVs). Quadrangular resection followed by ring annuloplasty is a reliable and reproducible surgical repair technique for treatment of posterior leaflet prolapse. Virtual MV repair simulation of leaflet resection in association with patient-specific 3D echocardiographic data can provide quantitative biomechanical and physiologic characteristics of pre- and post-resection MV function. We have developed a solid personalized computational simulation protocol to perform virtual MV repair using standard clinical guidelines of posterior leaflet resection with annuloplasty ring implantation. A virtual MV model was created using 3D echocardiographic data of a patient with posterior chordal rupture and severe mitral regurgitation. A quadrangle-shaped leaflet portion in the prolapsed posterior leaflet was removed, and virtual plication and suturing were performed. An annuloplasty ring of proper size was reconstructed and virtual ring annuloplasty was performed by superimposing the ring and the mitral annulus. Following the quadrangular resection and ring annuloplasty simulations, patient-specific annular motion and physiologic transvalvular pressure gradient were implemented and dynamic finite element simulation of MV function was performed. The pre-resection MV demonstrated a substantial lack of leaflet coaptation which directly correlated with the severe mitral regurgitation. Excessive stress concentration was found along the free marginal edge of the posterior leaflet involving the chordal rupture. Following the virtual resection and ring annuloplasty, the severity of the posterior leaflet prolapse markedly decreased. Excessive stress concentration disappeared over both anterior and posterior leaflets, and complete leaflet coaptation was effectively restored. This novel personalized virtual MV repair strategy has great potential to help with preoperative selection of the patient-specific optimal MV repair techniques, allow innovative surgical planning to expect improved efficacy of MV repair with more predictable outcomes, and ultimately provide more effective medical care for the patient.
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Rim et al. (2015) conducted a case report in Mitral valve prolapse with posterior chordal rupture and severe mitral regurgitation (n=1). Virtual mitral valve repair (quadrangular resection and ring annuloplasty) vs. Pre-resection state was evaluated on Leaflet coaptation and stress concentration. Virtual mitral valve repair using quadrangular resection and ring annuloplasty restored complete leaflet coaptation and eliminated excessive stress concentration in a patient-specific model.
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