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Published in: Journal of Digital Imaging 5/2018

01-10-2018

A Systematic Review of Three-Dimensional Printing in Liver Disease

Authors: Elizabeth Rose Perica, Zhonghua Sun

Published in: Journal of Imaging Informatics in Medicine | Issue 5/2018

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Abstract

The purpose of this review is to analyse current literature related to the clinical applications of 3D printed models in liver disease. A search of the literature was conducted to source studies from databases with the aim of determining the applications and feasibility of 3D printed models in liver disease. 3D printed model accuracy and costs associated with 3D printing, the ability to replicate anatomical structures and delineate important characteristics of hepatic tumours, and the potential for 3D printed liver models to guide surgical planning are analysed. Nineteen studies met the selection criteria for inclusion in the analysis. Seventeen of them were case reports and two were original studies. Quantitative assessment measuring the accuracy of 3D printed liver models was analysed in five studies with mean difference between 3D printed models and original source images ranging from 0.2 to 20%. Fifteen studies provided qualitative assessment with results showing the usefulness of 3D printed models when used as clinical tools in preoperative planning, simulation of surgical or interventional procedures, medical education, and training. The cost and time associated with 3D printed liver model production was reported in 11 studies, with costs ranging from US$13 to US$2000, duration of production up to 100 h. This systematic review shows that 3D printed liver models demonstrate hepatic anatomy and tumours with high accuracy. The models can assist with preoperative planning and may be used in the simulation of surgical procedures for the treatment of malignant hepatic tumours.
Literature
1.
go back to reference Naftulin JS, Kimchi EY, Cash SS: Streamlined, inexpensive 3D printing of the brain and skull. PLoS ONE 10:1–15, 2015CrossRef Naftulin JS, Kimchi EY, Cash SS: Streamlined, inexpensive 3D printing of the brain and skull. PLoS ONE 10:1–15, 2015CrossRef
2.
go back to reference Ho D, Squelch A, Sun Z: Modelling of aortic aneurysm and aortic dissection through 3D printing. J Med Radiat Sci 64:10–17, 2017CrossRef Ho D, Squelch A, Sun Z: Modelling of aortic aneurysm and aortic dissection through 3D printing. J Med Radiat Sci 64:10–17, 2017CrossRef
3.
go back to reference 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 47:1044–1052, 2015CrossRef 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 47:1044–1052, 2015CrossRef
4.
go back to reference Valverde I, Gomez G, Gonzales A, Suarez-Mejias C, Adsuar AF, Coserria JF, Uribe S, Gomez-Cia T, Hosseinpour AR: Three-dimensional patient-specific cardiac model for surgical planning in Nikaidoh procedure. Cardiol Young 25:698–704, 2015CrossRef Valverde I, Gomez G, Gonzales A, Suarez-Mejias C, Adsuar AF, Coserria JF, Uribe S, Gomez-Cia T, Hosseinpour AR: Three-dimensional patient-specific cardiac model for surgical planning in Nikaidoh procedure. Cardiol Young 25:698–704, 2015CrossRef
5.
go back to reference Sun Z, Lee S: A systematic review of 3-D printing in cardiovascular and cerebrovascular diseases. Anatol J Cardiol 17:423–435, 2017PubMedPubMedCentral Sun Z, Lee S: A systematic review of 3-D printing in cardiovascular and cerebrovascular diseases. Anatol J Cardiol 17:423–435, 2017PubMedPubMedCentral
6.
go back to reference Giannopoulos AA, Mitsouras D, Yoo SJ, Liu PP, Chatzizisis YS, Rybicki FJ: Applications of 3D printing in cardiovascular diseases. Nat Rev Cardiol 13:701–718, 2016CrossRef Giannopoulos AA, Mitsouras D, Yoo SJ, Liu PP, Chatzizisis YS, Rybicki FJ: Applications of 3D printing in cardiovascular diseases. Nat Rev Cardiol 13:701–718, 2016CrossRef
7.
go back to reference Martelli N, Serrano C, van den Brink H, Pineau J, Prognon P, Borget I, El Batti S: Advantages and disadvantages of 3-dimensional printing in surgery: A systematic review. Surgery 159:1485–1500, 2016CrossRef Martelli N, Serrano C, van den Brink H, Pineau J, Prognon P, Borget I, El Batti S: Advantages and disadvantages of 3-dimensional printing in surgery: A systematic review. Surgery 159:1485–1500, 2016CrossRef
8.
go back to reference Jones DB, Sung R, Weinberg C, Korelitz T, Andrews R: Three-dimensional modeling may improve surgical education and clinical practice. Surg Innov 23:189–195, 2015CrossRef Jones DB, Sung R, Weinberg C, Korelitz T, Andrews R: Three-dimensional modeling may improve surgical education and clinical practice. Surg Innov 23:189–195, 2015CrossRef
9.
go back to reference Bernhard J, Isotani S, Matsugasumi T, Duddalwar V, Hung A, Suer E, Baco E, Satkunasivam R, Djaladat H, Metcalfe C, Hu B, Wong K, Park D, Nguyen M, Hwang D, Bazargani ST, de Castro Abreu AL, Aron M, Ukimura O, Gill IS: Personalized 3D printed model of kidney and tumor anatomy: a useful tool for patient education. World J Urol 34:337–345, 2016CrossRef Bernhard J, Isotani S, Matsugasumi T, Duddalwar V, Hung A, Suer E, Baco E, Satkunasivam R, Djaladat H, Metcalfe C, Hu B, Wong K, Park D, Nguyen M, Hwang D, Bazargani ST, de Castro Abreu AL, Aron M, Ukimura O, Gill IS: Personalized 3D printed model of kidney and tumor anatomy: a useful tool for patient education. World J Urol 34:337–345, 2016CrossRef
10.
go back to reference Vukicevic M, Mosadegh B, Min JK, Little SH: Cardiac 3D printing and its future directions. JACC Cardiovasc Imaging 10:171–184, 2017CrossRef Vukicevic M, Mosadegh B, Min JK, Little SH: Cardiac 3D printing and its future directions. JACC Cardiovasc Imaging 10:171–184, 2017CrossRef
11.
go back to reference Ploch CC, Mansi CSSA, Jayamohan J, Kuhl E: Using 3D printing to create personalized brain models for neurosurgical training and preoperative planning. World Neurosurg 90:668–674, 2016CrossRef Ploch CC, Mansi CSSA, Jayamohan J, Kuhl E: Using 3D printing to create personalized brain models for neurosurgical training and preoperative planning. World Neurosurg 90:668–674, 2016CrossRef
12.
go back to reference Lambrecht JT, Berndt DC, Schumacher R, Zehnder M: Generation of three-dimensional prototype models based on cone beam computed tomography. Int J Comput Assist Radiol Surg 4:175–180, 2009CrossRef Lambrecht JT, Berndt DC, Schumacher R, Zehnder M: Generation of three-dimensional prototype models based on cone beam computed tomography. Int J Comput Assist Radiol Surg 4:175–180, 2009CrossRef
13.
go back to reference Preece D, Williams SB, Lam R, Weller R: “Let’s get physical”: Advantages of a physical model over 3D computer models and textbooks in learning imaging anatomy. Anat Sci Educ 6:216–224, 2013CrossRef Preece D, Williams SB, Lam R, Weller R: “Let’s get physical”: Advantages of a physical model over 3D computer models and textbooks in learning imaging anatomy. Anat Sci Educ 6:216–224, 2013CrossRef
14.
go back to reference Waran V, Narayanan V, Karuppiah R, Pancharatnam D, Chandran H, Raman R, Rahman ZA, Owen SL, Aziz TZ: Injecting realism in surgical training - Initial simulation experience with custom 3D models. J Surg Educ 71:193–197, 2014CrossRef Waran V, Narayanan V, Karuppiah R, Pancharatnam D, Chandran H, Raman R, Rahman ZA, Owen SL, Aziz TZ: Injecting realism in surgical training - Initial simulation experience with custom 3D models. J Surg Educ 71:193–197, 2014CrossRef
15.
go back to reference Zheng Y, Yu D, Zhao J, Wu Y, Zheng B: 3D printout models vs. 3D-rendered images: which is better for preoperative planning? J Surg Educ 73:518–523, 2016CrossRef Zheng Y, Yu D, Zhao J, Wu Y, Zheng B: 3D printout models vs. 3D-rendered images: which is better for preoperative planning? J Surg Educ 73:518–523, 2016CrossRef
16.
go back to reference Zein NN, Hanouneh IA, Bishop PD, Samaan M, Eghtesad B, Quintini C, Miller C, Yerian L, Klatte R: Three-dimensional print of a liver for preoperative planning in living donor liver transplantation. Liver Transpl 19:1304–1310, 2013CrossRef Zein NN, Hanouneh IA, Bishop PD, Samaan M, Eghtesad B, Quintini C, Miller C, Yerian L, Klatte R: Three-dimensional print of a liver for preoperative planning in living donor liver transplantation. Liver Transpl 19:1304–1310, 2013CrossRef
17.
go back to reference Witowski JS, Pędziwiatr M, Major P, Budzyński A: Cost-effective, personalized, 3D-printed liver model for preoperative planning before laparoscopic liver hemihepatectomy for colorectal cancer metastases. Int J Comput Assist Radiol Surg 12:2047–2054, 2017CrossRef Witowski JS, Pędziwiatr M, Major P, Budzyński A: Cost-effective, personalized, 3D-printed liver model for preoperative planning before laparoscopic liver hemihepatectomy for colorectal cancer metastases. Int J Comput Assist Radiol Surg 12:2047–2054, 2017CrossRef
18.
go back to reference Madurska MJ, Poyade M, Eason D, Rea P, Watson AJM: Development of a patient-specific 3D-printed liver model for preoperative planning. Surg Innov 24:145–150, 2017CrossRef Madurska MJ, Poyade M, Eason D, Rea P, Watson AJM: Development of a patient-specific 3D-printed liver model for preoperative planning. Surg Innov 24:145–150, 2017CrossRef
19.
go back to reference Watson RA: A low-cost surgical application of additive fabrication. J Surg Educ 71:14–17, 2014CrossRef Watson RA: A low-cost surgical application of additive fabrication. J Surg Educ 71:14–17, 2014CrossRef
20.
go back to reference Xiang N, Fang C, Fan Y, Yang J, Zeng N, Liu J, Zhu W: Application of liver three-dimensional printing in hepatectomy for complex massive hepatocarcinoma with rare variations of portal vein: preliminary experience. Int J Clin Exp Med 8:18873–11887, 2015PubMedPubMedCentral Xiang N, Fang C, Fan Y, Yang J, Zeng N, Liu J, Zhu W: Application of liver three-dimensional printing in hepatectomy for complex massive hepatocarcinoma with rare variations of portal vein: preliminary experience. Int J Clin Exp Med 8:18873–11887, 2015PubMedPubMedCentral
21.
go back to reference Mohr D, Shamseer L, Clarke M, Ghersi D, Liberati A, Petticrew M, Shekelle P, Stewart LA, PRISMA-P Group: Preferred reporting items for systematic review and meta-analysis protocols (PRISMA-P) 2015 Statement. Syst Rev 4:1, 2015CrossRef Mohr D, Shamseer L, Clarke M, Ghersi D, Liberati A, Petticrew M, Shekelle P, Stewart LA, PRISMA-P Group: Preferred reporting items for systematic review and meta-analysis protocols (PRISMA-P) 2015 Statement. Syst Rev 4:1, 2015CrossRef
22.
go back to reference Witowski JS, Coles-Black J, Zuzak TZ, Pedziwiatr M, Chuen J, Major P, Budzyriski A: 3D printing in liver surgery: a systematic review. Telemed J E Health 23:943–947, 2017CrossRef Witowski JS, Coles-Black J, Zuzak TZ, Pedziwiatr M, Chuen J, Major P, Budzyriski A: 3D printing in liver surgery: a systematic review. Telemed J E Health 23:943–947, 2017CrossRef
23.
go back to reference Soon DSC, Chae MP, Pilgrim CHC, Rozen WM, Spychal RT, Hunter-Smith DJ: 3D hepatic modelling for preoperative planning of hepatic resection: a systematic review. Ann Med Surg (Lond) 10:1–7, 2016CrossRef Soon DSC, Chae MP, Pilgrim CHC, Rozen WM, Spychal RT, Hunter-Smith DJ: 3D hepatic modelling for preoperative planning of hepatic resection: a systematic review. Ann Med Surg (Lond) 10:1–7, 2016CrossRef
24.
go back to reference Quintini C, Aucejo F, Hashimoto K, Zein N, Miller C: State of the art and future developments for surgical planning in LDLT. Curr Transpl Rep 1:35–42, 2014CrossRef Quintini C, Aucejo F, Hashimoto K, Zein N, Miller C: State of the art and future developments for surgical planning in LDLT. Curr Transpl Rep 1:35–42, 2014CrossRef
25.
go back to reference Alkhouri N, Zein NN: Three-dimensional printing and pediatric liver disease. Curr Opin Pediatr 28:626–630, 2016CrossRef Alkhouri N, Zein NN: Three-dimensional printing and pediatric liver disease. Curr Opin Pediatr 28:626–630, 2016CrossRef
26.
go back to reference Oshiro Y, Ohkohchi N: Three-dimensional liver surgery simulation: computer-assisted surgical planning with three-dimensional simulation software and three-dimensional printing. Tissue Eng Part A 23:474–480, 2017CrossRef Oshiro Y, Ohkohchi N: Three-dimensional liver surgery simulation: computer-assisted surgical planning with three-dimensional simulation software and three-dimensional printing. Tissue Eng Part A 23:474–480, 2017CrossRef
27.
go back to reference Yao R, Xu G, Mao SS, Yang HY, Sang XT, Sun W, Mao YL: Three-dimensional printing: review of application in medicine and hepatic surgery. Cancer Biol Med 13:443–451, 2016CrossRef Yao R, Xu G, Mao SS, Yang HY, Sang XT, Sun W, Mao YL: Three-dimensional printing: review of application in medicine and hepatic surgery. Cancer Biol Med 13:443–451, 2016CrossRef
28.
go back to reference Fang CH, Tao HS, Yang J, Fang ZS, Cai W, Liu J, Fan YH: Impact of three-dimensional reconstruction technique in the operation planning of centrally located hepatocellular carcinoma. J Am Coll Surg 220:28–37, 2015CrossRef Fang CH, Tao HS, Yang J, Fang ZS, Cai W, Liu J, Fan YH: Impact of three-dimensional reconstruction technique in the operation planning of centrally located hepatocellular carcinoma. J Am Coll Surg 220:28–37, 2015CrossRef
29.
go back to reference Leng S, Yu L, Vrieze T, Kuhlmann J, Chen B, McCollough CH. Construction of realistic liver phantoms from patients images using 3D printer and its application in CT image quality assessment. Proc SPIE Int Soc Opt Eng 2015, 2015 Leng S, Yu L, Vrieze T, Kuhlmann J, Chen B, McCollough CH. Construction of realistic liver phantoms from patients images using 3D printer and its application in CT image quality assessment. Proc SPIE Int Soc Opt Eng 2015, 2015
30.
go back to reference Baimakhanov Z, Soyama A, Takatsuki M, Hidaka M, Hirayama T, Kinoshita A, Natsuda K, Kuroki T, Eguchi S: Preoperative simulation with a 3-dimensional printed solid model for one-stop reconstruction of multiple hepatic veins during living donor liver transplantation. Liver Transpl 21:266–268, 2015CrossRef Baimakhanov Z, Soyama A, Takatsuki M, Hidaka M, Hirayama T, Kinoshita A, Natsuda K, Kuroki T, Eguchi S: Preoperative simulation with a 3-dimensional printed solid model for one-stop reconstruction of multiple hepatic veins during living donor liver transplantation. Liver Transpl 21:266–268, 2015CrossRef
31.
go back to reference Bucking TM, Hill E, Robertson JL, Maneas E, Plumb AA, Nikitichev DI: From medical imaging data to 3D printed anatomical models. Plos One 12:e0178540, 2017CrossRef Bucking TM, Hill E, Robertson JL, Maneas E, Plumb AA, Nikitichev DI: From medical imaging data to 3D printed anatomical models. Plos One 12:e0178540, 2017CrossRef
32.
go back to reference Choi YR, Kim JH, Park SJ, Hur BY, Han JK: Therapeutic response assessment using 3D ultrasound for hepatic metastasis from colorectal cancer: application of a personalized, 3D-printed tumor model using CT images. Plos One 12:e0182596, 2017CrossRef Choi YR, Kim JH, Park SJ, Hur BY, Han JK: Therapeutic response assessment using 3D ultrasound for hepatic metastasis from colorectal cancer: application of a personalized, 3D-printed tumor model using CT images. Plos One 12:e0182596, 2017CrossRef
33.
go back to reference Igami T, Nakamura Y, Hirose T, Ebata T, Yokoyama Y, Sugawara G, Mizuno T, Mori K, Nagino M: Application of a three-dimensional print of a liver in hepatectomy for small tumors invisible by intraoperative ultrasonography: Preliminary experience. World J Surg 38:3163–3166, 2014CrossRef Igami T, Nakamura Y, Hirose T, Ebata T, Yokoyama Y, Sugawara G, Mizuno T, Mori K, Nagino M: Application of a three-dimensional print of a liver in hepatectomy for small tumors invisible by intraoperative ultrasonography: Preliminary experience. World J Surg 38:3163–3166, 2014CrossRef
34.
go back to reference Javan R, Herrin D, Tangestanipoor A: Understanding spatially complex segmental and branch anatomy using 3D printing: liver, lung, prostate, coronary arteries, and circle of willis. Acad Radiol 23:1183–1189, 2016CrossRef Javan R, Herrin D, Tangestanipoor A: Understanding spatially complex segmental and branch anatomy using 3D printing: liver, lung, prostate, coronary arteries, and circle of willis. Acad Radiol 23:1183–1189, 2016CrossRef
35.
go back to reference Javan R, Zeman M: A prototype educational model for hepatobiliary interventions: unveiling the role of graphic designers in medical 3D printing. J Digit Imaging 31:133–143, 2018CrossRef Javan R, Zeman M: A prototype educational model for hepatobiliary interventions: unveiling the role of graphic designers in medical 3D printing. J Digit Imaging 31:133–143, 2018CrossRef
36.
go back to reference Kong X, Nie L, Zhang H, Wang Z, Ye Q, Tang L, Li J, Huang W: Do three-dimensional visualization and three-dimensional printing improve hepatic segment anatomy teaching? A randomized controlled study. J Surg Educ 73:264–269, 2016CrossRef Kong X, Nie L, Zhang H, Wang Z, Ye Q, Tang L, Li J, Huang W: Do three-dimensional visualization and three-dimensional printing improve hepatic segment anatomy teaching? A randomized controlled study. J Surg Educ 73:264–269, 2016CrossRef
37.
go back to reference Leng S, Chen B, Vrieze T, Kuhlman J, Yu L, Alexander A, Matsumoto J, Morris J, McCollough CH: Construction of realistic phantoms from patients images and a commercial three-dimensional printer. J Med Imag (Bellingham) 3:033501, 2016CrossRef Leng S, Chen B, Vrieze T, Kuhlman J, Yu L, Alexander A, Matsumoto J, Morris J, McCollough CH: Construction of realistic phantoms from patients images and a commercial three-dimensional printer. J Med Imag (Bellingham) 3:033501, 2016CrossRef
38.
go back to reference Oshiro Y, Mitani J, Okada T, Ohkohchi N: A novel three-dimensional print of liver vessels and tumors in hepatectomy. Surg Today 47:521–524, 2017CrossRef Oshiro Y, Mitani J, Okada T, Ohkohchi N: A novel three-dimensional print of liver vessels and tumors in hepatectomy. Surg Today 47:521–524, 2017CrossRef
39.
go back to reference Perica E, Sun Z: Patient-specific three-dimensional printing for pre-surgical planning in hepatocellular carcinoma treatment. Quant Imaging Med Surg 7:668–677, 2017CrossRef Perica E, Sun Z: Patient-specific three-dimensional printing for pre-surgical planning in hepatocellular carcinoma treatment. Quant Imaging Med Surg 7:668–677, 2017CrossRef
40.
go back to reference Soejima Y, Taguchi T, Sugimoto M, Hayashida M, Yoshizumi T, Ikegami T, Uchiyama H, Shirabe K, Maehara Y: Three-dimensional printing and biotexture modeling for preoperative simulation in living donor liver transplantation for small infants. Liver Transpl 22:1610–1614, 2016CrossRef Soejima Y, Taguchi T, Sugimoto M, Hayashida M, Yoshizumi T, Ikegami T, Uchiyama H, Shirabe K, Maehara Y: Three-dimensional printing and biotexture modeling for preoperative simulation in living donor liver transplantation for small infants. Liver Transpl 22:1610–1614, 2016CrossRef
41.
go back to reference Souzaki R, Kinoshita Y, Ieiri S, Hayashida M, Koga Y, Shirabe K, Hara T, Maehara Y, Hashizume M, Taguchi T: Three-dimensional liver model based on preoperative CT images as a tool to assist in surgical planning for hepatoblastoma in a child. Pediatr Surg Int 31:593–596, 2015CrossRef Souzaki R, Kinoshita Y, Ieiri S, Hayashida M, Koga Y, Shirabe K, Hara T, Maehara Y, Hashizume M, Taguchi T: Three-dimensional liver model based on preoperative CT images as a tool to assist in surgical planning for hepatoblastoma in a child. Pediatr Surg Int 31:593–596, 2015CrossRef
42.
go back to reference Takagi K, Nanashima A, Abo T, Arai J, Matsuo N, Fukuda T, Nagayasu T: Three-dimensional printing model of liver for operative simulation in perihilar cholangiocarcinoma. Hepatogastroenterology 61:2315–1216, 2014PubMed Takagi K, Nanashima A, Abo T, Arai J, Matsuo N, Fukuda T, Nagayasu T: Three-dimensional printing model of liver for operative simulation in perihilar cholangiocarcinoma. Hepatogastroenterology 61:2315–1216, 2014PubMed
43.
go back to reference Takao H, Amemiya S, Shibata E, Ohtomo K: Three-dimensional printing of hollow portal vein stenosis models: a feasibility study. J Vasc Interv Radiol 27:1755–1758, 2016CrossRef Takao H, Amemiya S, Shibata E, Ohtomo K: Three-dimensional printing of hollow portal vein stenosis models: a feasibility study. J Vasc Interv Radiol 27:1755–1758, 2016CrossRef
44.
go back to reference Crossingham JL, Jenkinson J, Woolridge N, Gallinger S, Tait GA, Moulton CA: Interpreting three-dimensional structures from two-dimensional images: a web-based interactive 3D teaching model of surgical liver anatomy. HPB (Oxford) 11:523–528, 2009CrossRef Crossingham JL, Jenkinson J, Woolridge N, Gallinger S, Tait GA, Moulton CA: Interpreting three-dimensional structures from two-dimensional images: a web-based interactive 3D teaching model of surgical liver anatomy. HPB (Oxford) 11:523–528, 2009CrossRef
45.
go back to reference Hansen C, Wieferich J, Ritter F, Rieder C, Peitgen H-O: Illustrative visualization of 3D planning models for augmented reality in liver surgery. Int J Comput Assist Radiol Surg 5(2):133–141, 2010CrossRef Hansen C, Wieferich J, Ritter F, Rieder C, Peitgen H-O: Illustrative visualization of 3D planning models for augmented reality in liver surgery. Int J Comput Assist Radiol Surg 5(2):133–141, 2010CrossRef
46.
go back to reference Su L, Dong Q, Zhang H, Zhou X, Chen Y, Hao X, Li X: Clinical application of a three-dimensional imaging technique in infants and young children with complex liver tumours. Pediatr Surg Int 32(4):387–395, 2016CrossRef Su L, Dong Q, Zhang H, Zhou X, Chen Y, Hao X, Li X: Clinical application of a three-dimensional imaging technique in infants and young children with complex liver tumours. Pediatr Surg Int 32(4):387–395, 2016CrossRef
47.
go back to reference Matsumoto JS, Morris JM, Foley TA, Kuhlmann JL, Nesberg LE, Vrtiska TJ: Three-dimensional physical modeling: applications and experience at Mayo clinic. Radiographics 35:1989–2006, 2015CrossRef Matsumoto JS, Morris JM, Foley TA, Kuhlmann JL, Nesberg LE, Vrtiska TJ: Three-dimensional physical modeling: applications and experience at Mayo clinic. Radiographics 35:1989–2006, 2015CrossRef
49.
go back to reference Presti GL, Carbone M, Ciriad D, Aramini D, Ferrari M, Ferrari V: Assessment of DICOM viewers capable of loading patient-specific 3D models obtained by different segmentation platforms in the operating room. J Digit Imaging 28:518–527, 2015CrossRef Presti GL, Carbone M, Ciriad D, Aramini D, Ferrari M, Ferrari V: Assessment of DICOM viewers capable of loading patient-specific 3D models obtained by different segmentation platforms in the operating room. J Digit Imaging 28:518–527, 2015CrossRef
50.
go back to reference Bangerjee P, Hu M, Kannan R, Krishnaswamy S: A semi-automatic approach to improve the efficiency of medical imaging segmentation for haptic rendering. J Digit Imaging 30:519–527, 2017CrossRef Bangerjee P, Hu M, Kannan R, Krishnaswamy S: A semi-automatic approach to improve the efficiency of medical imaging segmentation for haptic rendering. J Digit Imaging 30:519–527, 2017CrossRef
51.
go back to reference Park JS, Chung MS, Hwang SB, Lee YS, Har DH: Technical report on semiautomatic segmentation using the Adobe photoshop. J Digit Imaging 18:333–343, 2015CrossRef Park JS, Chung MS, Hwang SB, Lee YS, Har DH: Technical report on semiautomatic segmentation using the Adobe photoshop. J Digit Imaging 18:333–343, 2015CrossRef
52.
go back to reference Mitsouras D, Liacouras P, Imanzadeh A, Giannopolous AA, Cai T, Kumamaru KK, George E, Wake N, Caterson EJ, Pomahac B, Ho VB, Grant GT, Rybicki FJ: Medical 3D printing for the radiologist. Radiographics 35:1965–1988, 2015CrossRef Mitsouras D, Liacouras P, Imanzadeh A, Giannopolous AA, Cai T, Kumamaru KK, George E, Wake N, Caterson EJ, Pomahac B, Ho VB, Grant GT, Rybicki FJ: Medical 3D printing for the radiologist. Radiographics 35:1965–1988, 2015CrossRef
Metadata
Title
A Systematic Review of Three-Dimensional Printing in Liver Disease
Authors
Elizabeth Rose Perica
Zhonghua Sun
Publication date
01-10-2018
Publisher
Springer International Publishing
Published in
Journal of Imaging Informatics in Medicine / Issue 5/2018
Print ISSN: 2948-2925
Electronic ISSN: 2948-2933
DOI
https://doi.org/10.1007/s10278-018-0067-x

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