The Role of 3D Printing in Medical Applications: A State of the Art

被引:411
作者
Aimar, Anna [1 ]
Palermo, Augusto [2 ]
Innocenti, Bernardo [3 ]
机构
[1] Aid4Med Srl, I-33100 Udine, Italy
[2] Ist Auxol Italiano IRCCS Capitanio Hosp, Orthopaed Dept 3, I-20122 Milan, Italy
[3] Univ Libre Bruxelles, BEAMS Dept, B-1050 Brussels, Belgium
关键词
94;
D O I
10.1155/2019/5340616
中图分类号
R19 [保健组织与事业(卫生事业管理)];
学科分类号
摘要
Three-dimensional (3D) printing refers to a number of manufacturing technologies that generate a physical model from digital information. Medical 3D printing was once an ambitious pipe dream. However, time and investment made it real. Nowadays, the 3D printing technology represents a big opportunity to help pharmaceutical and medical companies to create more specific drugs, enabling a rapid production of medical implants, and changing the way that doctors and surgeons plan procedures. Patient-specific 3D-printed anatomical models are becoming increasingly useful tools in today's practice of precision medicine and for personalized treatments. In the future, 3D-printed implantable organs will probably be available, reducing the waiting lists and increasing the number of lives saved. Additive manufacturing for healthcare is still very much a work in progress, but it is already applied in many different ways in medical field that, already reeling under immense pressure with regards to optimal performance and reduced costs, will stand to gain unprecedented benefits from this good-as-gold technology. The goal of this analysis is to demonstrate by a deep research of the 3D-printing applications in medical field the usefulness and drawbacks and how powerful technology it is.
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页数:10
相关论文
共 82 条
[41]   Three-Dimensional Modeling May Improve Surgical Education and Clinical Practice [J].
Jones, Daniel B. ;
Sung, Robert ;
Weinberg, Crispin ;
Korelitz, Theodore ;
Andrews, Robert .
SURGICAL INNOVATION, 2016, 23 (02) :189-195
[42]  
KIRALY L, 2002, PEDIATRICS, V7, P129, DOI [DOI 10.21037/TP.2018.01.02, 10.21037/tp.2018.01.02]
[43]   Three-dimensional printing to facilitate anatomic study, device development, simulation, and planning in thoracic surgery [J].
Kurenov, Sergei N. ;
Ionita, Ciprian ;
Sammons, Dan ;
Demmy, Todd L. .
JOURNAL OF THORACIC AND CARDIOVASCULAR SURGERY, 2015, 149 (04) :973-U397
[44]   Use of 3D printed models in medical education: A randomized control trial comparing 3D prints versus cadaveric materials for learning external cardiac anatomy [J].
Lim, Kah Heng Alexander ;
Loo, Zhou Yaw ;
Goldie, Stephen J. ;
Adams, Justin W. ;
McMenamin, Paul G. .
ANATOMICAL SCIENCES EDUCATION, 2016, 9 (03) :213-221
[45]  
Mahaisavariya B., 2006, Inj. Extra, V37, P176, DOI [10.1016/j.injury.2005.10.026, DOI 10.1016/J.INJURY.2005.10.026]
[46]   3D Printed Bionic Ears [J].
Mannoor, Manu S. ;
Jiang, Ziwen ;
James, Teena ;
Kong, Yong Lin ;
Malatesta, Karen A. ;
Soboyejo, Winston O. ;
Verma, Naveen ;
Gracias, David H. ;
McAlpine, Michael C. .
NANO LETTERS, 2013, 13 (06) :2634-2639
[47]   Surgical learning curves and operative efficiency: a cross-specialty observational study [J].
Maruthappu, Mahiben ;
Duclos, Antoine ;
Lipsitz, Stuart R. ;
Orgill, Dennis ;
Carty, Matthew J. .
BMJ OPEN, 2015, 5 (03) :1-6
[48]   Three-dimensional Physical Modeling: Applications and Experience at Mayo Clinic [J].
Matsumoto, Jane S. ;
Morris, Jonathan M. ;
Foley, Thomas A. ;
Williamson, Eric E. ;
Leng, Shuai ;
McGee, Kiaran P. ;
Kuhlmann, Joel L. ;
Nesberg, Linda E. ;
Vrtiska, Terri J. .
RADIOGRAPHICS, 2015, 35 (07) :1990-2007
[49]  
Mazher I. M., 2016, P 27 ANN INT SOL FRE
[50]  
Mendonca D. A., 2016, J CLEFT LIP PALATE C, V3, P88, DOI DOI 10.4103/2348-2125.187520