Three-dimensional printing in spine surgery: a review of current applications

被引:48
作者
Tong, Yixuan [1 ]
Kaplan, Daniel James [2 ]
Spivak, Jeffrey M. [2 ]
Bendo, John A. [2 ]
机构
[1] NYU, Grossman Sch Med, 550 1st Ave, New York, NY 10016 USA
[2] NYU, Langone Orthoped Hosp, Spine Div, 301 E 17th St, New York, NY 10010 USA
关键词
3D printing; Three-dimensional printing; Rapid prototyping; Additive manufacturing; Spine surgery; Orthopedics; Custom implants; Surgical guides; Medical education; Resident training; PEDICLE SCREW PLACEMENT; RAPID PROTOTYPING TECHNOLOGY; DRILL GUIDE TEMPLATE; INSERTION PROCEDURE; MODEL; RESECTION; IMPLANT; STEREOLITHOGRAPHY; RECONSTRUCTION; FABRICATION;
D O I
10.1016/j.spinee.2019.11.004
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
In recent years, the use of three-dimensional printing (3DP) technology has gained traction in orthopedic spine surgery. Although research on this topic is still primarily limited to case reports and small cohort studies, it is evident that there are many avenues for 3DP innovation in the field. This review article aims to discuss the current and emerging 3DP applications in spine surgery, as well as the challenges of 3DP production and limitations in its use. 3DP models have been presented as helpful tools for patient education, medical training, and presurgical planning. Intraoperatively, 3DP devices may serve as patient-specific surgical guides and implants that improve surgical outcomes. However, the time, cost, and learning curve associated with constructing a 3DP model are major barriers to widespread use in spine surgery. Considering the costs and benefits of 3DP along with the varying risks associated with different spine procedures, 3DP technology is likely most valuable for complex or atypical spine disorder cases. Further research is warranted to gain a better understanding of how 3DP can and will impact spine surgery. (C) 2019 Elsevier Inc. All rights reserved.
引用
收藏
页码:833 / 846
页数:14
相关论文
共 92 条
[1]   Biological performance of a polycaprolactone-based scaffold used as fusion cage device in a large animal model of spinal reconstructive surgery [J].
Abbah, Sunny A. ;
Lam, Christopher X. L. ;
Hutmacher, Dietmar W. ;
Goh, James C. H. ;
Wong, Hee-Kit .
BIOMATERIALS, 2009, 30 (28) :5086-5093
[2]  
[Anonymous], 2019, ART XL 3D TI SPIN SY
[3]  
[Anonymous], 2015, SCI REP
[4]  
BAGARIA V, 2015, INT J NEUROREHABIL, V2, P175, DOI DOI 10.4172/2376-0281.1000175
[5]   Fabrication of polycaprolactone-silanated β-tricalcium phosphate-heparan sulfate scaffolds for spinal fusion applications [J].
Bhakta, Gajadhar ;
Ekaputra, Andrew K. ;
Rai, Bina ;
Abbah, Sunny A. ;
Tan, Tuan Chun ;
Le, Bach Quang ;
Chatterjea, Anindita ;
Hu, Tao ;
Lin, Tingxuan ;
Arafat, M. Tarik ;
van Wijnen, Andre J. ;
Goh, James ;
Nurcombe, Victor ;
Bhakoo, Kishore ;
Birch, William ;
Xu, Li ;
Gibson, Ian ;
Wong, Hee-Kit ;
Cool, Simon M. .
SPINE JOURNAL, 2018, 18 (05) :818-830
[6]   Tissue-engineered intervertebral discs produce new matrix, maintain disc height, and restore biomechanical function to the rodent spine [J].
Bowles, Robby D. ;
Gebhard, Harry H. ;
Haertl, Roger ;
Bonassar, Lawrence J. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2011, 108 (32) :13106-13111
[7]   Thoracic Pedicle Screw Placement Guide Plate Produced by Three-Dimensional (3-D) Laser Printing [J].
Chen, Hongliang ;
Guo, Kaijing ;
Yang, Huilin ;
Wu, Dongying ;
Yuan, Feng .
MEDICAL SCIENCE MONITOR, 2016, 22 :1682-1686
[8]   Clinical Use of 3D Printing Guide Plate in Posterior Lumbar Pedicle Screw Fixation [J].
Chen, Hongliang ;
Wu, Dongying ;
Yang, Huilin ;
Guo, Kaijin .
MEDICAL SCIENCE MONITOR, 2015, 21 :3948-3954
[9]   A Review of Current Clinical Applications of Three Dimensional Printing in Spine Surgery [J].
Cho, Woojin ;
Job, Alan Varkey ;
Chen, Jing ;
Baek, Jung Hwan .
ASIAN SPINE JOURNAL, 2018, 12 (01) :171-177
[10]  
Choy Wen Jie, 2018, J Spine Surg, V4, P757, DOI 10.21037/jss.2018.12.01