Feasibility and improvement of a three-dimensional printed navigation template for modified cortical bone trajectory screw placement in the lumbar spine

被引:4
|
作者
Shi, Wenjie [1 ]
Aini, Mijiti [2 ]
Dang, Limin [1 ]
Kahaer, Alafate [3 ]
Zhou, Zhihao [3 ]
Wang, Yixi [1 ]
Maimaiti, Abulikemu [3 ]
Wang, Shuiquan [4 ]
Guo, Hailong [3 ]
Rexiti, Paerhati [3 ]
机构
[1] Xinjiang Med Univ, Xinjiang Uygur Autonomous Reg, Urumqi, Peoples R China
[2] Second Peoples Hosp Kashgar Dist, Xinjiang Uygur Autonomous Reg, Dept Orthoped, Kashgar City, Peoples R China
[3] Xinjiang Med Univ, Affiliated Hosp 1, Dept Spine Surg, Xinjiang Uygur Autonomous Reg, Urumqi, Peoples R China
[4] Xinjiang Med Univ, Coll Basic Med, Dept Anat, Xinjiang Uygur Autonomous Reg, Urumqi, Peoples R China
来源
FRONTIERS IN SURGERY | 2022年 / 9卷
关键词
spine implants; lumbar vertebra; 3D printing; reverse engineering; cortical bone trajectory; 3D navigation template; STRENGTH; FIXATION; DENSITY;
D O I
10.3389/fsurg.2022.1028276
中图分类号
R61 [外科手术学];
学科分类号
摘要
ObjectivesCompared with traditional pedicle screw trajectory, cortical bone trajectory (CBT) increases the contact surface between the screw and cortical bone where the screw is surrounded by dense cortical bone, which does not deform remarkably due to degeneration. We aimed to provide detailed information about the improvement of three-dimensional (3D)-printed navigation templates for modified CBT screw placement in the lumbar spine and evaluate the safety and accuracy thereof. MethodsFour human cadaveric lumbar spine specimens were selected. After CT scanning data were reconstructed to 3D models, either the left or right side of each specimen was randomly selected to establish a 3D-navigation template, mutually complemented with the surface anatomical structure of the lateral margin of the lumbar isthmus, vertebral plate, and spinous process. The corresponding 3D centrum was printed according to the CT scanning data, and a navigation template of supporting design was made according to modified cortical bone technique. The same template was used to insert CBT screws into 3D printed and cadaveric specimens. After the screws were inserted, the screw path of the 3D printed specimens was directly observed, and that of the anatomical specimens was scanned by CT, to determine the position and direction of the screws to analyze the success rate of screw placement. ResultsTwenty cortical bone screws were placed in each of the 3D printed and anatomical specimens, with excellent rates of screw placement of 100% and 95%, respectively. ConclusionsWe report the easy, safe, accurate, and reliable use of a 3D-printed navigation template to carry out screw placement by modified cortical bone technique in the lumbar spine.
引用
收藏
页数:10
相关论文
共 50 条
  • [31] Reliability of three-dimensional fluoroscopy for detecting pedicle screw violations in the thoracic and lumbar spine - Comments
    Benzel, EC
    McCormick, PC
    Kaiser, MG
    Le, HN
    Kim, D
    NEUROSURGERY, 2004, 54 (05) : 1142 - 1143
  • [32] Biomechanical Changes of Adjacent and Fixed Segments Through Cortical Bone Trajectory Screw Fixation versus Traditional Trajectory Screw Fixation in the Lumbar Spine: A Finite Element Analysis
    Zhang, Lai
    Li, Hui-Min
    Zhang, Renjie
    Zhang, Huaqing
    Shen, Cai-Liang
    WORLD NEUROSURGERY, 2021, 151 : E447 - E456
  • [33] Comparing Three-dimensional and Two-dimensional Preoperative Planning for Lumbar Transpedicular Screw Placement: A Retrospective Study
    Dogu, Huseyin
    Abdallah, Anas
    Mucuoglu, Ali O.
    Demirel, Nail
    Elmadag, N. Mehmet
    JOURNAL OF NEUROLOGICAL SURGERY PART A-CENTRAL EUROPEAN NEUROSURGERY, 2025, 86 (01) : 1 - 11
  • [34] Computer-assisted Patient-specific Prototype Template for Thoracolumbar Cortical Bone Trajectory Screw Placement: A Cadaveric Study
    Kim, Sang Bum
    Rhee, John M.
    Lee, Gi Soo
    Lee, Hee Young
    Kim, Taehyung
    Won, Yougun
    TECHNIQUES IN ORTHOPAEDICS, 2018, 33 (04) : 246 - 250
  • [35] Upper Lumbar Pedicle Screw Insertion Using Three-Dimensional Fluoroscopy Navigation: Assessment of Clinical Accuracy
    Sugimoto, Yoshihisa
    Ito, Yasuo
    Tomioka, Masao
    Shimokawa, Tetsuya
    Shiozaki, Yasuyuki
    Mazaki, Tetsuro
    Tanaka, Masato
    ACTA MEDICA OKAYAMA, 2010, 64 (05) : 293 - 297
  • [36] The accuracy of cortical bone trajectory screw placement guided by spinous process clamp hardware in lumbar spinal surgery: a retrospective study
    Zhang, Xi-nuo
    Su, Qing-jun
    Pei, Bao-qing
    Pan, Ai-xing
    Yang, Hong-hao
    Ding, Hong-tao
    Hai, Yong
    Liu, Yu-zeng
    SCIENTIFIC REPORTS, 2023, 13 (01)
  • [37] The accuracy of cortical bone trajectory screw placement guided by spinous process clamp hardware in lumbar spinal surgery: a retrospective study
    Xi-nuo Zhang
    Qing-jun Su
    Bao-qing Pei
    Ai-xing Pan
    Hong-hao Yang
    Hong-tao Ding
    Yong Hai
    Yu-zeng Liu
    Scientific Reports, 13
  • [38] Feasibility of mixed reality-based intraoperative three-dimensional image-guided navigation for atlanto-axial pedicle screw placement
    Wu, Xinghuo
    Liu, Rong
    Xu, Song
    Yang, Cao
    Yang, Shuhua
    Shao, Zengwu
    Li, Suyun
    Ye, Zhewei
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART H-JOURNAL OF ENGINEERING IN MEDICINE, 2019, 233 (12) : 1310 - 1317
  • [39] Occipital condyle screw placement and occipitocervical instrumentation using three-dimensional image-guided navigation
    Le, Tien V.
    Burkett, Clint
    Ramos, Edwin
    Uribe, Juan S.
    JOURNAL OF CLINICAL NEUROSCIENCE, 2012, 19 (05) : 757 - 760
  • [40] Patient-specific three-dimensional printed template for halo frame pin placement for multiple skull bone defects after cranioplasty
    Lal, B.
    Alagarsamy, R.
    Agarwal, B.
    Bhutia, O.
    Roychoudhury, A.
    BRITISH JOURNAL OF ORAL & MAXILLOFACIAL SURGERY, 2021, 59 (07): : 847 - 849