Recent advances on the development of phantoms using 3D printing for imaging with CT, MRI, PET, SPECT, and ultrasound

被引:227
作者
Filippou, Valeria [1 ]
Tsoumpas, Charalampos [2 ]
机构
[1] Univ Leeds, Inst Med & Biol Engn, Fac Mech Engn, Leeds LS2 9JT, W Yorkshire, England
[2] Univ Leeds, Sch Med, Dept Biomed Imaging Sci, Leeds LS2 9NL, W Yorkshire, England
基金
英国工程与自然科学研究理事会;
关键词
3D printing; CT; image quality; mammography; MR; PET; phantoms; SPECT; US; MEDICAL APPLICATIONS; COMPUTED-TOMOGRAPHY; RADIATION-DOSIMETRY; RADIOLOGICAL PROPERTIES; QUALITY-ASSURANCE; THORAX PHANTOM; BRAIN PHANTOM; HEAD PHANTOM; RADIOTHERAPY; FABRICATION;
D O I
10.1002/mp.13058
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
PurposePrinting technology, capable of producing three-dimensional (3D) objects, has evolved in recent years and provides potential for developing reproducible and sophisticated physical phantoms. 3D printing technology can help rapidly develop relatively low cost phantoms with appropriate complexities, which are useful in imaging or dosimetry measurements. The need for more realistic phantoms is emerging since imaging systems are now capable of acquiring multimodal and multiparametric data. This review addresses three main questions about the 3D printers currently in use, and their produced materials. The first question investigates whether the resolution of 3D printers is sufficient for existing imaging technologies. The second question explores if the materials of 3D-printed phantoms can produce realistic images representing various tissues and organs as taken by different imaging modalities such as computer tomography (CT), positron emission tomography (PET), single-photon emission computed tomography (SPECT), magnetic resonance imaging (MRI), ultrasound (US), and mammography. The emergence of multimodal imaging increases the need for phantoms that can be scanned using different imaging modalities. The third question probes the feasibility and easiness of printing radioactive or nonradioactive solutions during the printing process. MethodsA systematic review of medical imaging studies published after January 2013 is performed using strict inclusion criteria. The databases used were Scopus and Web of Knowledge with specific search terms. In total, 139 papers were identified; however, only 50 were classified as relevant for this paper. In this review, following an appropriate introduction and literature research strategy, all 50 articles are presented in detail. A summary of tables and example figures of the most recent advances in 3D printing for the purposes of phantoms across different imaging modalities are provided. ResultsAll 50 studies printed and scanned phantoms in either CT, PET, SPECT, mammography, MRI, and USor a combination of those modalities. According to the literature, different parameters were evaluated depending on the imaging modality used. Almost all papers evaluated more than two parameters, with the most common being Hounsfield units, density, attenuation and speed of sound. ConclusionsThe development of this field is rapidly evolving and becoming more refined. There is potential to reach the ultimate goal of using 3D phantoms to get feedback on imaging scanners and reconstruction algorithms more regularly. Although the development of imaging phantoms is evident, there are still some limitations to address: One of which is printing accuracy, due to the printer properties. Another limitation is the materials available to print: There are not enough materials to mimic all the tissue properties. For example, one material can mimic one propertysuch as the density of real tissuebut not any other property, like speed of sound or attenuation.
引用
收藏
页码:E740 / E760
页数:21
相关论文
共 90 条
[21]  
Drotman Dylan, 2017, 2017 IEEE International Conference on Robotics and Automation (ICRA), P5532, DOI 10.1109/ICRA.2017.7989652
[22]   A dynamic thorax phantom for the assessment of cardiac and respiratory motion correction in PET/MRI: A preliminary evaluation [J].
Fieseler, Michael ;
Kugel, Harald ;
Gigengack, Fabian ;
Koesters, Thomas ;
Buether, Florian ;
Quick, Harald H. ;
Faber, Cornelius ;
Jiang, Xiaoyi ;
Schaefers, Klaus P. .
NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2013, 702 :59-63
[23]   An anthropomorphic phantom for quantitative evaluation of breast MRI [J].
Freed, Melanie ;
de Zwart, Jacco A. ;
Loud, Jennifer T. ;
El Khouli, Riham H. ;
Myers, Kyle J. ;
Greene, Mark H. ;
Duyn, Jeff H. ;
Badano, Aldo .
MEDICAL PHYSICS, 2011, 38 (02) :743-753
[24]   COMPARISON OF TWO INEXPENSIVE RAPID PROTOTYPING METHODS FOR MANUFACTURING FILAMENT TARGET ULTRASOUND PHANTOMS [J].
Fuzesi, Krisztian ;
Gyongy, Miklos .
ULTRASOUND IN MEDICINE AND BIOLOGY, 2017, 43 (03) :712-720
[25]   An anthropomorphic multimodality (CT/MRI) head phantom prototype for end-to-end tests in ion radiotherapy [J].
Gallas, Raya R. ;
Huenemohr, Nora ;
Runz, Armin ;
Niebuhr, Nina I. ;
Jaekel, Oliver ;
Greilich, Steffen .
ZEITSCHRIFT FUR MEDIZINISCHE PHYSIK, 2015, 25 (04) :391-399
[26]   A fully automatic, threshold-based segmentation method for the estimation of the Metabolic Tumor Volume from PET images: validation on 3D printed anthropomorphic oncological lesions [J].
Gallivanone, F. ;
Interlenghi, M. ;
Canervari, C. ;
Castiglioni, I. .
JOURNAL OF INSTRUMENTATION, 2016, 11
[27]   Three-Dimensional Printing (3DP) of neonatal head phantom for ultrasound: Thermocouple embedding and simulation of bone [J].
Gatto, Matteo ;
Memoli, Gianluca ;
Shaw, Adam ;
Sadhoo, Neelaksh ;
Gelat, Pierre ;
Harris, Russell A. .
MEDICAL ENGINEERING & PHYSICS, 2012, 34 (07) :929-937
[28]   Development of patient-specific molecular imaging phantoms using a 3D printer [J].
Gear, J. I. ;
Long, C. ;
Rushforth, D. ;
Chittenden, S. J. ;
Cummings, C. ;
Flux, G. D. .
MEDICAL PHYSICS, 2014, 41 (08) :525-527
[29]   Abdo-Man: a 3D-printed anthropomorphic phantom for validating quantitative SIRT [J].
Gear, Jonathan I. ;
Cummings, Craig ;
Craig, Allison J. ;
Divoli, Antigoni ;
Long, Clive D. C. ;
Tapner, Michael ;
Flux, Glenn D. .
EJNMMI PHYSICS, 2016, 3 (01)
[30]   The use of rapid prototyping to assist medical applications [J].
Gibson, I ;
Cheung, LK ;
Chow, SP ;
Cheung, WL ;
Beh, SL ;
Savalani, M ;
Lee, SH .
RAPID PROTOTYPING JOURNAL, 2006, 12 (01) :53-58