Biomechanical analysis of atlantoaxial intraarticular fusion cages with posterior pedicle screws fixation using finite element method

被引:2
|
作者
Gu Y. [1 ]
He S. [1 ]
Wang Y. [2 ]
Xu D. [2 ]
Ma W. [2 ]
Zhao L. [2 ]
机构
[1] Shanghai Tenth People's Hospital, School of Medicine, Tongji University, 301#, Yanchang Zhong Road, Shanghai City
[2] Ningbo Sixth Hospital, 1059#, Zhongshan Dong Road, Ningbo City, Zhejiang Province
关键词
Atlantoaxial fixation; Atlantoaxial intraarticular fusion cage; Biomechanics; Finite element analysis;
D O I
10.1016/j.clinbiomech.2022.105735
中图分类号
学科分类号
摘要
Background: Cadaveric biomechanical studies indicated that atlantoaxial intraarticular fusion cages with posterior pedicle screws fixation could increase the multi-axial rigidity. However, the stress distribution of the fixation construct is still unclear. Methods: From computed tomography images, a nonlinear intact three-dimensional C0–2 finite element model was developed and validated. Four finite element models were reconstructed: intact model, unstable model, bilateral atlantoaxial pedicle screws combined bilateral cages model, bilateral atlantoaxial pedicle screws model. The range of motion and maximum von Mises stresses were compared under flexion, extension, lateral bending, and axial rotation. Findings: Compared with unstable model, both bilateral atlantoaxial pedicle screws combined bilateral cages model and bilateral atlantoaxial pedicle screws model fixation techniques reduced range of motion by >99% in extension, flexion, lateral bending and axial rotation. For bilateral atlantoaxial pedicle screws combined bilateral cages model, the maximum von Mises stress was in the base of the C2 screw head site. In the bilateral atlantoaxial pedicle screws model was stressed at the rod linked C1 and C2 screws. Compared with bilateral atlantoaxial pedicle screws model, bilateral atlantoaxial pedicle screws combined bilateral cages model reduced the maximum von Mises stress on the implants by >90% in extension, flexion, lateral bending and axial rotation. Interpretation: The finite element model study indicated that, compared with posterior C1-C2 pedicle screws fixation, atlantoaxial intraarticular fusion cages with posterior pedicle screws fixation could not only significantly restore stability to the atlantoaxial junction, but also dramatically reduce the maximum von Mises stress in the C1-C2 pedicle screws. © 2022 Elsevier Ltd
引用
收藏
相关论文
共 50 条
  • [1] Biomechanical characteristics of 2 different posterior fixation methods of bilateral pedicle screws: A finite element analysis
    Ji, Yulei
    Zhang, Qiaolin
    Song, Yang
    Hu, Qiuli
    Fekete, Gusztav
    Baker, Julien S.
    Gu, Yaodong
    MEDICINE, 2022, 101 (36) : E30419
  • [2] Comparative Finite Element Analysis of Lumbar Cortical Screws and Pedicle Screws in Transforaminal and Posterior Lumbar Interbody Fusion
    Sin, Dong Ah
    Heo, Dong Hwa
    NEUROSPINE, 2019, 16 (02) : 298 - 304
  • [3] Biomechanical properties of different anterior and posterior techniques for atlantoaxial fixation: a finite element analysis
    Li, Jie
    Cao, Shuai
    Guo, Dong
    Lu, Teng
    Zang, Quanjin
    JOURNAL OF ORTHOPAEDIC SURGERY AND RESEARCH, 2023, 18 (01)
  • [4] Biomechanical properties of different anterior and posterior techniques for atlantoaxial fixation: a finite element analysis
    Jie Li
    Shuai Cao
    Dong Guo
    Teng Lu
    Quanjin Zang
    Journal of Orthopaedic Surgery and Research, 18
  • [5] A finite element modeling of posterior atlantoaxial fixation and biomechanical analysis of C2 intralaminar screw fixation
    Ma Xuexiao
    Peng Xianbo
    Xiang Hongfei
    Zhang Yan
    Zhang Guoqing
    Chen Bohua
    CHINESE MEDICAL JOURNAL, 2014, 127 (07) : 1266 - 1271
  • [6] Biomechanical comparison of unilateral and bilateral pedicle screws fixation for transforaminal lumbar interbody fusion after decompressive surgery - a finite element analysis
    Chen, Shih-Hao
    Lin, Shang-Chih
    Tsai, Wen-Chi
    Wang, Chih-Wei
    Chao, Shih-Heng
    BMC MUSCULOSKELETAL DISORDERS, 2012, 13
  • [7] Biomechanical comparison of unilateral and bilateral pedicle screws fixation for transforaminal lumbar interbody fusion after decompressive surgery -- a finite element analysis
    Shih-Hao Chen
    Shang-Chih Lin
    Wen-Chi Tsai
    Chih-Wei Wang
    Shih-Heng Chao
    BMC Musculoskeletal Disorders, 13
  • [8] Biomechanical evaluation of the fixation strength of lumbar pedicle screws using cortical bone trajectory: a finite element study
    Matsukawa, Keitaro
    Yato, Yoshiyuki
    Imabayashi, Hideaki
    Hosogane, Naobumi
    Asazuma, Takashi
    Nemoto, Koichi
    JOURNAL OF NEUROSURGERY-SPINE, 2015, 23 (04) : 471 - 478
  • [9] New Posterior Atlantoaxial Restricted Non-Fusion Fixation for Atlantoaxial Instability: A Biomechanical Study
    Chen, Jinshui
    Zhou, Fengjin
    Ni, Bin
    Guo, Qunfeng
    Guan, Huapeng
    Xu, Tianming
    Liu, Qi
    NEUROSURGERY, 2016, 78 (05) : 735 - 742
  • [10] A finite element study on posterior short segment fixation combined with unilateral fixation using pedicle screws for stable thoracolumbar fracture
    Su, Yunshan
    Wang, Xiongfei
    Ren, Dong
    Liu, Yueju
    Liu, Shaoming
    Wang, Pengcheng
    MEDICINE, 2018, 97 (34)