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Current Medical Imaging

Editor-in-Chief

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

Review Article

3D Printing as a Significant Achievement for Application in Posttraumatic Surgeries - A Literature Review

Author(s): Michał Smoczok, Krzysztof Starszak* and Weronika Starszak

Volume 17, Issue 7, 2021

Published on: 09 May, 2020

Page: [814 - 819] Pages: 6

DOI: 10.2174/1573405616666200510003811

Price: $65

Abstract

Background: 3D printing is increasingly used in many fields of medicine. The broadening of knowledge in this field and the cooperation of doctors and engineers increase the interest in this technology and results in attempts to implement it at every stage of the treatment.

Objective: The review aims to summarize the current literature on the use of 3D printing technology in the treatment of post-trauma patients.

Methods: A review of available scientific publications in PubMed regarding 3D printing and its application in the context of posttraumatic procedures was carried out. Clinical Trials and Reviews from the period 2014-2019 (6-year period) were taken into consideration. The database was searched for “Printing”, “ThreeDimensional” [MAJR] [MeSH Term]. Finally, 48 studies have been included in our review article.

Results: 3D printing technology has a number of applications in patients who have suffered injuries. 3D printing has found application in the preparation of procedures, accurate visualization of occurring injuries and complications, education of doctors and patients, prototyping, creation of synthetic scaffolding, production and implementation of target implants and rehabilitation.

Conclusion: 3D printing is increasingly used in providing for posttraumatic patients. It is necessary to conduct further research in this area and to provide development opportunities regarding biopolymers and bioprinting. It is also necessary to improve cooperation between doctors and engineers and to create new centres that can comprehensively use 3D printing - from imaging diagnostics to the production of implants and their surgical use.

Keywords: Three-dimensional, three-dimensional printing surgery, posttraumatic, prosthesis, implants, 3DP, custom-made, printing in medicine, 3D in traumatology.

Graphical Abstract
[1]
Tack P, Victor J, Gemmel P, Annemans L. 3D-printing techniques in a medical setting: a systematic literature review. Biomed Eng Online 2016; 15(1): 115.
[http://dx.doi.org/10.1186/s12938-016-0236-4] [PMID: 27769304]
[2]
Schubert C, van Langeveld MC, Donoso LA. Innovations in 3D printing: a 3D overview from optics to organs. Br J Ophthalmol 2014; 98(2): 159-61.
[http://dx.doi.org/10.1136/bjophthalmol-2013-304446] [PMID: 24288392]
[3]
Luo H, Meyer-Szary J, Wang Z, Sabiniewicz R, Liu Y. Three-dimensional printing in cardiology: Current applications and future challenges. Cardiol J 2017; 24(4): 436-44.
[http://dx.doi.org/10.5603/CJ.a2017.0056] [PMID: 28541602]
[4]
Sarker MD, Naghieh S, Sharma NK, Chen X. 3D biofabrication of vascular networks for tissue regeneration: A report on recent advances. J Pharm Anal 2018; 8(5): 277-96.
[http://dx.doi.org/10.1016/j.jpha.2018.08.005] [PMID: 30345141]
[5]
Fielding GA, Bandyopadhyay A, Bose S. Effects of silica and zinc oxide doping on mechanical and biological properties of 3D printed tricalcium phosphate tissue engineering scaffolds. Dent Mater 2012; 28(2): 113-22.
[http://dx.doi.org/10.1016/j.dental.2011.09.010] [PMID: 22047943]
[6]
Vaishya R, Vaish A. 3D Printing in Orthopedics 2019.
[http://dx.doi.org/10.1007/978-3-030-15089-1_26.]
[7]
El-Torky DMS, Al-Berry MN, Salem MAM, Roushdy MI. 3D visualization of brain tumors using MR images: A survey. Curr Med Imaging Rev 2019; 15(4): 353-61.
[http://dx.doi.org/10.2174/1573405614666180111142055] [PMID: 31989903]
[8]
Jakubicek R, Chmelik J, Jan J. Vertebrae Segmentation in 3D CT data: A review of methods and evaluation approaches. Curr Med Imaging 2018; 14: 853.
[http://dx.doi.org/10.2174/1573405613666170622120228]
[9]
Li C, Cheung TF, Fan VC, Sin KM, Wong CWY, Leung GKK. Applications of three-dimensional printing in surgery. Surg Innov 2017; 24(1): 82-8.
[http://dx.doi.org/10.1177/1553350616681889] [PMID: 27913755]
[10]
Global Health Estimates 2016: Deaths by Cause, Age, Sex, by Country and by Region, 2000-2016. Geneva: World Health Organization 2018.
[11]
World health statistics overview 2019: monitoring health for the SDGs, sustainable development goals. Geneva: World Health Organization 2019. (WHO/DAD/2019.1). Licence: CC BY-NC-SA 3.0 IGO.
[12]
von Rüden C, Bühren V, Perl M. Polytraumamanagement – Behandlung des Schwerverletzten in Schockraum und OP. Z Orthop Unfall 2017; 155(5): 603-22.
[http://dx.doi.org/10.1055/s-0042-124275] [PMID: 29050055]
[13]
Xiong L, Li X, Li H, Chen Z, Xiao T. The efficacy of 3D printing-assisted surgery for traumatic fracture: a meta-analysis. Postgrad Med J 2019; 95(1126): 414-9.
[http://dx.doi.org/10.1136/postgradmedj-2019-136482] [PMID: 31324729]
[14]
Bruns N, Krettek C. 3D-Druck in der Unfallchirurgie : Planung, Druck und Aufbereitung. Unfallchirurg 2019; 122(4): 270-7.
[http://dx.doi.org/10.1007/s00113-019-0625-9] [PMID: 30944937]
[15]
Jones DB, Sung R, Weinberg C, Korelitz T, Andrews R. Three-dimensional modeling may improve surgical education and clinical practice. Surg Innov 2016; 23(2): 189-95.
[http://dx.doi.org/10.1177/1553350615607641] [PMID: 26423911]
[16]
VanKoevering KK, Malloy KM. Emerging role of three-dimensional printing in simulation in otolaryngology. Otolaryngol Clin North Am 2017; 50(5): 947-58.
[http://dx.doi.org/10.1016/j.otc.2017.05.006] [PMID: 28838640]
[17]
Kim JW, Lee Y, Seo J, et al. Clinical experience with three-dimensional printing techniques in orthopedic trauma. J Orthop Sci 2018; 23(2): 383-8.
[http://dx.doi.org/10.1016/j.jos.2017.12.010] [PMID: 29325763]
[18]
Powers MK, Lee BR, Silberstein J. Three-dimensional printing of surgical anatomy. Curr Opin Urol 2016; 26(3): 283-8.
[http://dx.doi.org/10.1097/MOU.0000000000000274] [PMID: 26825651]
[19]
Su W, Xiao Y, He S, Huang P, Deng X. Three-dimensional printing models in congenital heart disease education for medical students: a controlled comparative study. BMC Med Educ 2018; 18(1): 178.
[http://dx.doi.org/10.1186/s12909-018-1293-0] [PMID: 30068323]
[20]
Li Z, Li Z, Xu R, et al. Three-dimensional printing models improve understanding of spinal fracture-A randomized controlled study in China. Sci Rep 2015; 5: 11570.
[http://dx.doi.org/10.1038/srep11570] [PMID: 26099838]
[21]
Jones DG. Three-dimensional printing in anatomy education: assessing potential ethical dimensions. Anat Sci Educ 2019; 12(4): 435-43.
[http://dx.doi.org/10.1002/ase.1851] [PMID: 30554454]
[22]
Martelli N, Serrano C, van den Brink H, et al. Advantages and disadvantages of 3-dimensional printing in surgery: A systematic review. Surgery 2016; 159(6): 1485-500.
[http://dx.doi.org/10.1016/j.surg.2015.12.017] [PMID: 26832986]
[23]
Hwang TJ, Kiang C, Paul M. Surgical applications of 3-dimensional printing and precision medicine. JAMA Otolaryngol Head Neck Surg 2015; 141(4): 305-6.
[http://dx.doi.org/10.1001/jamaoto.2015.44] [PMID: 25695233]
[24]
Cammarata MJ, Wake N, Kantar RS, et al. Three-dimensional analysis of donor masks for facial transplantation. Plast Reconstr Surg 2019; 143(6): 1290e-7e.
[http://dx.doi.org/10.1097/PRS.0000000000005671] [PMID: 30907812]
[25]
Ghai S, Sharma Y, Jain N, Satpathy M, Pillai AK. Use of 3-D printing technologies in craniomaxillofacial surgery a review. Oral Maxillofac Surg 22(3): 249-59.
[http://dx.doi.org/10.1007/s10006-018-0704-z.]
[26]
VanKoevering KK, Hollister SJ, Green GE. Advances in 3-dimensional printing in otolaryngology: A review. JAMA Otolaryngol Head Neck Surg 2017; 143(2): 178-83.
[http://dx.doi.org/10.1001/jamaoto.2016.3002] [PMID: 27711917]
[27]
Morgan C, Khatri C, Hanna SA, Ashrafian H, Sarraf KM. Use of three-dimensional printing in preoperative planning in orthopaedic trauma surgery: A systematic review and meta-analysis. World J Orthop 2020; 11(1): 57-67.
[http://dx.doi.org/10.5312/wjo.v11.i1.57] [PMID: 31966970]
[28]
Crafts TD, Ellsperman SE, Wannemuehler TJ, Bellicchi TD, Shipchandler TZ, Mantravadi AV. Three-dimensional printing and its applications in otorhinolaryngology-head and neck surgery. Otolaryngol Head Neck Surg 2017; 156(6): 999-1010.
[http://dx.doi.org/10.1177/0194599816678372] [PMID: 28421875]
[29]
Aimar A, Palermo A, Innocenti B. The role of 3D printing in medical applications: A state of the art. J Healthc Eng 2019; 2019: 5340616.
[http://dx.doi.org/10.1155/2019/5340616] [PMID: 31019667]
[30]
Bruns N, Krettek C. [3D-printing in trauma surgery : Planning, printing and processing]. Unfallchirurg 2019; 122(4): 270-7.
[http://dx.doi.org/10.1007/s00113-019-0625-9] [PMID: 30944937]
[31]
Memminger M, Banci L, Meoli A. Bilateral total hip replacement in dwarfism with a custom laser-printed trabecular acetabular shell. Orthopedics 2019; 42(5): e477-9.
[http://dx.doi.org/10.3928/01477447-20190627-03] [PMID: 31269219]
[32]
Park SW, Choi JW, Koh KS, Oh TS. Mirror-imaged rapid prototype skull model and pre-molded synthetic scaffold to achieve optimal orbital cavity reconstruction. J Oral Maxillofac Surg 2015; 73(8): 1540-53.
[http://dx.doi.org/10.1016/j.joms.2015.03.025] [PMID: 25869986]
[33]
Tomaževič M, Kristan A, Kamath AF, Cimerman M. 3D printing of implants for patient-specific acetabular fracture fixation: an experimental study. Eur J Trauma Emerg Surg 2019. Online ahead of print.
[http://dx.doi.org/10.1007/s00068-019-01241-y] [PMID: 31641786]
[34]
Louvrier A, Marty P, Barrabé A, et al. How useful is 3D printing in maxillofacial surgery? J Stomatol Oral Maxillofac Surg 2017; 118(4): 206-12.
[http://dx.doi.org/10.1016/j.jormas.2017.07.002] [PMID: 28732777]
[35]
Maroulakos M, Kamperos G, Tayebi L, Halazonetis D, Ren Y. Applications of 3D printing on craniofacial bone repair: A systematic review. J Dent 2019; 80: 1-14.
[http://dx.doi.org/10.1016/j.jdent.2018.11.004] [PMID: 30439546]
[36]
Choi YD, Kim Y, Park E. Patient-specific augmentation rhinoplasty using a three-dimensional simulation program and three-dimensional printing. Aesthet Surg J 2017; 37(9): 988-98.
[http://dx.doi.org/10.1093/asj/sjx046] [PMID: 28520846]
[37]
Wong KC. 3D-printed patient-specific applications in orthopedics. Orthop Res Rev 2016; 8: 57-66.
[http://dx.doi.org/10.2147/ORR.S99614] [PMID: 30774470]
[38]
Tappa K, Jammalamadaka U. Novel biomaterials used in medical 3D printing techniques. J Funct Biomater 2018; 9(1): E17.
[http://dx.doi.org/10.3390/jfb9010017] [PMID: 29414913]
[39]
Valding B, Zrounba H, Martinerie S, May L, Broome M. Should you buy a three-dimensional printer? a study of an orbital fracture. J Craniofac Surg 2018; 29(7): 1925-7.
[http://dx.doi.org/10.1097/SCS.0000000000005048] [PMID: 30234715]
[40]
Kang S, Kwon J, Ahn CJ, et al. Generation of customized orbital implant templates using 3-dimensional printing for orbital wall reconstruction. Eye (Lond) 2018; 32(12): 1864-70.
[http://dx.doi.org/10.1038/s41433-018-0193-1] [PMID: 30154573]
[41]
Oh TS, Jeong WS, Chang TJ, Koh KS, Choi JW. Customized orbital wall reconstruction using three-dimensionally printed rapid prototype model in patients with orbital wall fracture. J Craniofac Surg 2016; 27(8): 2020-4.
[http://dx.doi.org/10.1097/SCS.0000000000003195] [PMID: 28005746]
[42]
Fan B, Chen H, Sun YJ, et al. Clinical effects of 3-D printing-assisted personalized reconstructive surgery for blowout orbital fractures. Graefes Arch Clin Exp Ophthalmol 2017; 255(10): 2051-7.
[http://dx.doi.org/10.1007/s00417-017-3766-y] [PMID: 28786025]
[43]
Lunsford C, Grindle G, Salatin B, Dicianno BE. Innovations with 3-dimensional printing in physical medicine and rehabilitation: A review of the literature. PM R 2016; 8(12): 1201-12.
[http://dx.doi.org/10.1016/j.pmrj.2016.07.003] [PMID: 27424769]
[44]
Ten Kate J, Smit G, Breedveld P. 3D-printed upper limb prostheses: a review. Disabil Rehabil Assist Technol 2017; 12(3): 300-14.
[http://dx.doi.org/10.1080/17483107.2016.1253117] [PMID: 28152642]
[45]
Burn MB, Ta A, Gogola GR. Three-dimensional printing of prosthetic hands for children. J Hand Surg Am 2016; 41(5): e103-9.
[http://dx.doi.org/10.1016/j.jhsa.2016.02.008] [PMID: 26972557]
[46]
Tanaka KS, Lightdale-Miric N. Advances in 3D-printed pediatric prostheses for upper extremity differences. J Bone Joint Surg Am 2016; 98(15): 1320-6.
[http://dx.doi.org/10.2106/JBJS.15.01212] [PMID: 27489324]
[47]
Silva K, Rand S, Cancel D, Chen Y, Kathirithamby R, Stern M. Three-dimensional (3-D) printing: a cost-effective solution for improving global accessibility to prostheses. PM R 2015; 7(12): 1312-4.
[http://dx.doi.org/10.1016/j.pmrj.2015.06.438] [PMID: 26709247]
[48]
Zuniga J, Katsavelis D, Peck J, et al. Cyborg beast: a low-cost 3d-printed prosthetic hand for children with upper-limb differences. BMC Res Notes 2015; 8: 10.
[http://dx.doi.org/10.1186/s13104-015-0971-9] [PMID: 25601104]

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