Development of virtual mitral valve leaflet models from three-dimensional echocardiography

Mitral valve (MV) disease is responsible for approximately 2,581 deaths and 41,000 hospital discharges each year in the US. Mitral regurgitation (MR), retrograde blood from through the MV, is often an indicator of MV disease. Surgical repair of MVs is preferred over replacement, as it is correlated...

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Main Author: Icenogle, David A.
Other Authors: Yoganathan, Ajit
Language:en_US
Published: Georgia Institute of Technology 2013
Subjects:
Online Access:http://hdl.handle.net/1853/48994
id ndltd-GATECH-oai-smartech.gatech.edu-1853-48994
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spelling ndltd-GATECH-oai-smartech.gatech.edu-1853-489942013-11-05T03:31:38ZDevelopment of virtual mitral valve leaflet models from three-dimensional echocardiographyIcenogle, David A.EchocardiographyUltrasoundMitral valveSegmentationMitral valveEchocardiographyImaging systems in medicineComputer simulationMitral valve (MV) disease is responsible for approximately 2,581 deaths and 41,000 hospital discharges each year in the US. Mitral regurgitation (MR), retrograde blood from through the MV, is often an indicator of MV disease. Surgical repair of MVs is preferred over replacement, as it is correlated with better patient quality of life. However, replacement rates are still near 40% because MV surgical repair expertise is not spread across all hospitals. In addition, 15-80% of surgical repair patients have recurrent MR within 10 years. Quantitative patient-specific models could aid these issues by providing less experienced surgeons with additional information before surgery and a quantitative map of patient valve changes after surgery. Real-time 3D echocardiography (RT3DE) can provide high quality 3D images of MVs and has been used to generate quantitative models previously. However, there is not currently an efficient, dynamic, and validated method that is fast enough to use in common practice. To fill this need, a tool to generate quantitative 3D models of mitral valve leaflets from RT3DE in an efficient manner was created. Then an in vitro echocardiography correction scheme was devised and a dynamic, in vitro validation of the tool was performed. The tool demonstrated that it could generate dynamic, complex MV geometry accurately and more efficiently than current methods available. In addition, the ability for mesh interpolation techniques to reduce segmentation time was demonstrated. The tool generated by this study provides a method to quickly and accurately generate MV geometry that could be applied to dynamic patient specific geometry to aid surgical decisions and track patient geometry changes after surgery.Georgia Institute of TechnologyYoganathan, Ajit2013-09-19T13:03:32Z2013-09-19T13:03:32Z2012-07-05Thesishttp://hdl.handle.net/1853/48994en_US
collection NDLTD
language en_US
sources NDLTD
topic Echocardiography
Ultrasound
Mitral valve
Segmentation
Mitral valve
Echocardiography
Imaging systems in medicine
Computer simulation
spellingShingle Echocardiography
Ultrasound
Mitral valve
Segmentation
Mitral valve
Echocardiography
Imaging systems in medicine
Computer simulation
Icenogle, David A.
Development of virtual mitral valve leaflet models from three-dimensional echocardiography
description Mitral valve (MV) disease is responsible for approximately 2,581 deaths and 41,000 hospital discharges each year in the US. Mitral regurgitation (MR), retrograde blood from through the MV, is often an indicator of MV disease. Surgical repair of MVs is preferred over replacement, as it is correlated with better patient quality of life. However, replacement rates are still near 40% because MV surgical repair expertise is not spread across all hospitals. In addition, 15-80% of surgical repair patients have recurrent MR within 10 years. Quantitative patient-specific models could aid these issues by providing less experienced surgeons with additional information before surgery and a quantitative map of patient valve changes after surgery. Real-time 3D echocardiography (RT3DE) can provide high quality 3D images of MVs and has been used to generate quantitative models previously. However, there is not currently an efficient, dynamic, and validated method that is fast enough to use in common practice. To fill this need, a tool to generate quantitative 3D models of mitral valve leaflets from RT3DE in an efficient manner was created. Then an in vitro echocardiography correction scheme was devised and a dynamic, in vitro validation of the tool was performed. The tool demonstrated that it could generate dynamic, complex MV geometry accurately and more efficiently than current methods available. In addition, the ability for mesh interpolation techniques to reduce segmentation time was demonstrated. The tool generated by this study provides a method to quickly and accurately generate MV geometry that could be applied to dynamic patient specific geometry to aid surgical decisions and track patient geometry changes after surgery.
author2 Yoganathan, Ajit
author_facet Yoganathan, Ajit
Icenogle, David A.
author Icenogle, David A.
author_sort Icenogle, David A.
title Development of virtual mitral valve leaflet models from three-dimensional echocardiography
title_short Development of virtual mitral valve leaflet models from three-dimensional echocardiography
title_full Development of virtual mitral valve leaflet models from three-dimensional echocardiography
title_fullStr Development of virtual mitral valve leaflet models from three-dimensional echocardiography
title_full_unstemmed Development of virtual mitral valve leaflet models from three-dimensional echocardiography
title_sort development of virtual mitral valve leaflet models from three-dimensional echocardiography
publisher Georgia Institute of Technology
publishDate 2013
url http://hdl.handle.net/1853/48994
work_keys_str_mv AT icenogledavida developmentofvirtualmitralvalveleafletmodelsfromthreedimensionalechocardiography
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