Literature DB >> 19698837

The practical clinical value of three-dimensional models of complex congenitally malformed hearts.

Eugénie Riesenkampff1, Urte Rietdorf, Ivo Wolf, Bernhard Schnackenburg, Peter Ewert, Michael Huebler, Vladimir Alexi-Meskishvili, Robert H Anderson, Nicole Engel, Hans-Peter Meinzer, Roland Hetzer, Felix Berger, Titus Kuehne.   

Abstract

OBJECTIVE: Detailed 3-dimensional anatomic information is essential when planning strategies of surgical treatment for patients with complex congenitally malformed hearts. Current imaging techniques, however, do not always provide all the necessary anatomic information in a user-friendly fashion. We sought to assess the practical clinical value of realistic 3-dimensional models of complex congenitally malformed hearts.
METHODS: In 11 patients, aged from 0.8 to 27 years, all with complex congenitally malformed hearts, an unequivocal decision regarding the optimum surgical strategy had not been reached when using standard diagnostic tools. Therefore, we constructed 3-dimensional virtual computer and printed cast models of the heart on the basis of high-resolution whole-heart or cine magnetic resonance imaging or computed tomography. Anatomic descriptions were compared with intraoperative findings when surgery was performed.
RESULTS: Independently of age-related factors, images acquired in all patients using magnetic resonance imaging and computed tomography proved to be of sufficient quality for producing the models without major differences in the postprocessing and revealing the anatomy in an unequivocal 3-dimensional context. Examination of the models provided invaluable additional information that supported the surgical decision-making. The anatomy as shown in the models was confirmed during surgery. Biventricular corrective surgery was achieved in 5 patients, palliative surgery was achieved in 3 patients, and lack of suitable surgical options was confirmed in the remaining 3 patients.
CONCLUSION: Realistic 3-dimensional modeling of the heart provides a new means for the assessment of complex intracardiac anatomy. We expect this method to change current diagnostic approaches and facilitate preoperative planning.

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Year:  2009        PMID: 19698837     DOI: 10.1016/j.jtcvs.2009.03.011

Source DB:  PubMed          Journal:  J Thorac Cardiovasc Surg        ISSN: 0022-5223            Impact factor:   5.209


  22 in total

Review 1.  Medical 3D Printing for the Radiologist.

Authors:  Dimitris Mitsouras; Peter Liacouras; Amir Imanzadeh; Andreas A Giannopoulos; Tianrun Cai; Kanako K Kumamaru; Elizabeth George; Nicole Wake; Edward J Caterson; Bohdan Pomahac; Vincent B Ho; Gerald T Grant; Frank J Rybicki
Journal:  Radiographics       Date:  2015 Nov-Dec       Impact factor: 5.333

2.  Applications of three-dimensional printing technology in the cardiovascular field.

Authors:  Di Shi; Kai Liu; Xin Zhang; Hang Liao; Xiaoping Chen
Journal:  Intern Emerg Med       Date:  2015-07-29       Impact factor: 3.397

3.  Feasibility and Validity of Printing 3D Heart Models from Rotational Angiography.

Authors:  Manoj Parimi; John Buelter; Vignan Thanugundla; Sri Condoor; Nadeem Parkar; Saar Danon; Wilson King
Journal:  Pediatr Cardiol       Date:  2018-01-05       Impact factor: 1.655

Review 4.  Lumped parameter model for hemodynamic simulation of congenital heart diseases.

Authors:  Shuji Shimizu; Dai Une; Toru Kawada; Yohsuke Hayama; Atsunori Kamiya; Toshiaki Shishido; Masaru Sugimachi
Journal:  J Physiol Sci       Date:  2017-12-21       Impact factor: 2.781

5.  CT-Based 3D Printing of the Glenoid Prior to Shoulder Arthroplasty: Bony Morphology and Model Evaluation.

Authors:  Kenneth C Wang; Anja Jones; Shivkumar Kambhampati; Mohit N Gilotra; Peter C Liacouras; Satre Stuelke; Brian Shiu; Natalie Leong; S Ashfaq Hasan; Eliot L Siegel
Journal:  J Digit Imaging       Date:  2019-10       Impact factor: 4.056

6.  Utility and Scope of Rapid Prototyping in Patients with Complex Muscular Ventricular Septal Defects or Double-Outlet Right Ventricle: Does it Alter Management Decisions?

Authors:  Puneet Bhatla; Justin T Tretter; Achi Ludomirsky; Michael Argilla; Larry A Latson; Sujata Chakravarti; Piers C Barker; Shi-Joon Yoo; Doff B McElhinney; Nicole Wake; Ralph S Mosca
Journal:  Pediatr Cardiol       Date:  2016-11-11       Impact factor: 1.655

Review 7.  Applications of 3D printing in cardiovascular diseases.

Authors:  Andreas A Giannopoulos; Dimitris Mitsouras; Shi-Joon Yoo; Peter P Liu; Yiannis S Chatzizisis; Frank J Rybicki
Journal:  Nat Rev Cardiol       Date:  2016-10-27       Impact factor: 32.419

8.  3D Printed Heart Models Illustrating Myocardial Perfusion Territories to Augment Echocardiography and Electrocardiography Interpretation.

Authors:  Geoffroy P J C Noël; Weimeng Ding; Peter Steinmetz
Journal:  Med Sci Educ       Date:  2021-01-08

Review 9.  Cardiothoracic Applications of 3-dimensional Printing.

Authors:  Andreas A Giannopoulos; Michael L Steigner; Elizabeth George; Maria Barile; Andetta R Hunsaker; Frank J Rybicki; Dimitris Mitsouras
Journal:  J Thorac Imaging       Date:  2016-09       Impact factor: 3.000

Review 10.  Manufacturing Better Outcomes in Cardiovascular Intervention: 3D Printing in Clinical Practice Today.

Authors:  James Shin; Quynh A Truong
Journal:  Curr Treat Options Cardiovasc Med       Date:  2018-10-25
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