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Current Medical Imaging

Editor-in-Chief

ISSN (Print): 1573-4056
ISSN (Online): 1875-6603

Editorial

3D Printing in Medical Applications

Author(s): Zhonghua Sun

Volume 17, Issue 7, 2021

Published on: 02 November, 2021

Article ID: e020721194437 Pages: 3

DOI: 10.2174/157340561707210702114259

[1]
Giannopoulos AA, Steigner ML, George E, et al. Cardiothoracic applications of 3-dimensional printing. J Thorac Imaging 2016; 31(5): 253-72.
[2]
Sun Z, Liu D. A systematic review of clinical value of three-dimensional printing in renal disease. Quant Imaging Med Surg 2018; 8(3): 311-25.
[3]
Lau I, Liu D, Xu L, Fan Z, Sun Z. Clinical value of patient-specific three-dimensional printing of congenital heart disease: Quantitative and qualitative Assessments. PLoS One 2018; 13(3)e0194333
[4]
Costello JP, Olivieri LJ, Su L, Krieger A, et al. Incorporating three-dimensional printing into a simulation-based congenital heart disease and critical care training curriculum for resident physicians. Congenit Heart Dis 2015; 10(2): 185-90.
[5]
Loke YH, Harahsheh AS, Krieger A, Olivieri LJ. Usage of 3D models of tetralogy pf Fallot for medical education: impact on learning congenital heart disease. BMC Med Educ 2017; 17(1): 54.
[6]
Valverde I, Gomez-Ciriza G, Hussain T, et al. Three dimensional printed models for surgical planning of complex congenital heart defects: An international multicenter study. Eur J Cardiothorac Surg 2017; 52(6): 1139-48.
[7]
Costello J, Olivieri L, Krieger A, et al. Utilizing three-dimensional printing technology to assess the feasibility of high-fidelity synthetic ventricular septal defect models for simulation in medical education. World J Pediatr Congenit Heart Surg 2014; 5(3): 421-6.
[8]
Ryan J, Plasencia J, Richardson R, et al. 3D printing for congenital heart disease: A single site’s initial three-year experience. 3D Print Med 2018; 4(1): 10.
[9]
White SC, Sedler J, Jones TW, Seckeler M. Utility of three-dimensional models in resident education on simple and complex intracardiac congenital heart defects. Congenit Heart Dis 2018; 13(6): 1045-9.
[10]
Schmauss D, Haeberle S, Hagl C, Sodian R. Three-dimensional printing in cardiac surgery and interventional cardiology: A single-centre experience. Eur J Cardiothorac Surg 2015; 47(6): 1044-52.
[11]
Kiraly L, Tofeig M, Jha NK, Talo H. Three-dimensional printed prototypes refine the anatomy of post-modified Norwood-1 complex aortic arch obstruction and allow presurgical simulation of the repair. Interact Cardiovasc Thorac Surg 2016; 22(2): 238-40.
[12]
Sun Z, Lee S. A systematic review of 3D printing in cardiovascular and cerebrovascular diseases. Anatol J Cardiol 2017; 17(6): 423-35.
[13]
Ho D, Squelch A, Sun Z. Modelling of aortic aneurysm and aortic dissection through 3D printing. J Med Radiat Sci 2017; 64(1): 10-7.
[14]
Perica E, Sun Z. Patient-specific three-dimensional printing for pre-surgical planning in hepatocellular carcinoma treatment. Quant Imaging Med Surg 2017; 7(6): 668-77.
[15]
Sun Z, Ng CK. Synchrotron radiation imaging of aortic stent grafting: an in vitro phantom study. J Med Imaging Health Inform 2017; 7(4): 890-6.
[16]
Sun Z. Clinical applications of patient-specific 3D printed models in cardiovascular disease: Current status and clinical applications. Biomoleculres 2020; 10(11): 1577.
[17]
Lee S, Squelch A, Sun Z. Quantitative assessment of 3D printed model accuracy in delineating congenital heart disease. Biomolecules 2021; 11(2): 270.
[18]
Aldosari S, Jansen S, Sun Z. Optimization of computed tomography pulmonary angiography protocols using 3D printed model with simulation of pulmonary embolism. Quant Imaging Med Surg 2019; 9(1): 53-62.
[19]
Aldosari S, Jansen S, Sun Z. Patient-specific 3D printed pulmonary artery model with simulation of peripheral pulmonary embolism for developing optimal computed tomography pulmonary angiography protocols. Quant Imaging Med Surg 2019; 9(1): 75-85.
[20]
Sun Z, Ng CK, Squelch A. Synchrotron radiation computed tomography assessment of calcified plaques and coronary stenosis with different slice thicknesses and beam energies on 3D printed coronary models. Quant Imaging Med Surg 2019; 9(1): 6-22.
[21]
Sun Z, Ng CK. Use of synchrotron radiation to accurately assess cross-sectional area reduction of the aortic branch ostia caused by suprarenal stent wires. J Endovasc Ther 2017; 24(6): 870-9.
[22]
Sun Z, Ng CK, Sa Dos Reis C. Synchrotron radiation computed tomography versus conventional computed tomography for assessment of four types of stent grafts used for endovascular treatment of thoracic and abdominal aortic aneurysms. Quant Imaging Med Surg 2018; 8(6): 609-20.
[23]
Sun Z. 3D printed coronary models offer potential value in visualising coronary anatomy and coronary stents for investigation of coronary CT protocols. Curr Med Imaging 2020; 16(6): 625-38.
[24]
Wu C, Squelch A, Sun Z. Optimal image segmentation protocol for 3D printing of aortic dissection through open-source software. J 3D Print Med 2021. 10.2217/3dp-2020-0025 (Epub ahead of print)
[25]
Sahai N, Gogoi M, Tewari RP. 3D printed chitosan composite scaffold for chondrocytes differentiation. Curr Med Imaging 2021; 17 10.2174/1573405616666201217112939 (Epub ahead of print)
[26]
Wu C, Squelch A, Sun Z. Investigation of three-dimensional printing materials for printing aorta model replicating type B aortic dissection. Curr Med Imaging 17 10.2174/1573405617666210218102046 (Epub ahead of print)
[27]
Smoczok M, Starszak K, Starszak W. 3D printing as a significant achievement for application in posttraumatic surgeries-A literature review. Curr Med Imaging 17 10.2174/1573405616666200510003811 (Epuba ahead of print)
[28]
McCallum S, Maresse S, Fearns P. Evaluating 3D-printed bolus compared to conventional bolus types used in external bean radiation therapy. Curr Med Imaging 17 10.2174/1573405617666210202114336 (Epuab ahead of print)
[29]
Sun Z. Insights into 3D printing in medical applications. Quant Imaging Med Surg 2019; 9(1): 1-5.
[30]
Sun Z, Lau I, Wong YH, Yeong CH. Personalized three-dimensional printed models in congenital heart disease. J Clin Med 2019; 8(4): 522.

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