Biomechanical effects of iatrogenic muscle-ligaments complex damage on adjacent segments following posterior lumbar interbody fusion: A finite element analysis

被引:0
|
作者
Wei, Wei [1 ,2 ]
Wang, Tianhao [2 ]
Li, Jian [1 ]
Liu, Jianheng [2 ]
Mao, Keya [2 ]
Pan, Chun'ang [3 ,4 ]
Li, Hui [3 ,4 ]
Zhao, Yongfei [2 ]
机构
[1] China Aerosp Sci & Ind Corp 731 Hosp, Dept Orthopaed 2, Beijing, Peoples R China
[2] Chinese Peoples Liberat Army Gen Hosp, Med Ctr 4, Dept Orthopaed, 28 Fuxing Rd, Beijing 100048, Peoples R China
[3] Beijing Engn & Technol Res Ctr Med Endoplants, Beijing, Peoples R China
[4] Beijing Engn Lab Funct Med Mat & Instruments, Beijing, Peoples R China
基金
中国国家自然科学基金;
关键词
Lumbar; finite element analysis; adjacent segment; multifidus; posterior ligament complex; RISK-FACTORS; PARASPINAL MUSCLE; DEGENERATION; LAMINECTOMY; MULTIFIDUS; SPINE; DISEASE; DEVICE;
D O I
10.1177/03913988231203586
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Objective: To analyze the biomechanical effects of proximal iatrogenic muscle-ligaments complex (MLC) damage on adjacent segments following posterior lumbar interbody fusion (PLIF) by finite element (FE) analysis. Methods: The multifidus muscle force was loaded in the validated intact lumbosacral finite element model. Based on whether undergoing PLIF or the proximal MLC damage, three models were established. Range of motion (ROM) and the maximum von Mises (VM) stress of adjacent segments were analyzed, as well as the average muscle force and work capacity in four loading directions. Results: PLIF results in significant changes in ROM and stress. ROM changed significantly in the upper adjacent segment, the PLIF model changed the most in extension, and the largest change in the lower adjacent segment occurred after MLC damage. The VM stress of the upper adjacent segment occurred in extension of the PLIF model, and that of the lower adjacent segment occurred in rotation after MLC damage. In flexion, ROM, and stress of the damaged MLC fusion model were significantly increased compared with the normal and PLIF models, there was a stepwise amplification. The average muscle force comparison of three models was 5.8530, 12.3185, and 13.4670 N, respectively. The total work capacity comparison was close to that of muscle force. Conclusion: PLIF results in increased ROM and the VM stress of adjacent segments, the proximal MLC damage will aggravate this change. This may increase the risk of ASD and chronic low back pain. Preserving the proximal MLC reduces the biomechanical effects on adjacent segments.
引用
收藏
页码:562 / 568
页数:7
相关论文
共 50 条
  • [1] Biomechanical effect of proximal multifidus injury on adjacent segments during posterior lumbar interbody fusion: a finite element study
    Wei, Wei
    Wang, Tianhao
    Liu, Jianheng
    Mao, Keya
    Pan, Chun'ang
    Li, Hui
    Zhao, Yongfei
    BMC MUSCULOSKELETAL DISORDERS, 2023, 24 (01)
  • [2] Biomechanical Comparison of Posterior Lumbar Interbody Fusion and Transforaminal Lumbar Interbody Fusion by Finite Element Analysis
    Xu, Hao
    Tang, Hao
    Guan, Xuemei
    Jiang, Fugui
    Xu, Neng
    Ju, Wen
    Zhu, Xiaodong
    Zhang, Xiaojian
    Zhang, Qiulin
    Li, Ming
    NEUROSURGERY, 2013, 72 : 21 - 26
  • [3] Biomechanical effects of an oblique lumbar interbody fusion combined with posterior augmentation: a finite element analysis
    Huang, Shengjia
    Min, Shaoxiong
    Wang, Suwei
    Jin, Anmin
    BMC MUSCULOSKELETAL DISORDERS, 2022, 23 (01)
  • [4] Preserving Posterior Complex Can Prevent Adjacent Segment Disease following Posterior Lumbar Interbody Fusion Surgeries: A Finite Element Analysis
    Huang, Yun-Peng
    Du, Cheng-Fei
    Cheng, Cheng-Kung
    Zhong, Zheng-Cheng
    Chen, Xuan-Wei
    Wu, Gui
    Li, Zhe-Cheng
    Ye, Jin-Duo
    Lin, Jian-Hua
    Wang, Li Zhen
    PLOS ONE, 2016, 11 (11):
  • [5] Biomechanical effect of proximal multifidus injury on adjacent segments during posterior lumbar interbody fusion: a finite element study
    Wei Wei
    Tianhao Wang
    Jianheng Liu
    Keya Mao
    Chun’ang Pan
    Hui Li
    Yongfei Zhao
    BMC Musculoskeletal Disorders, 24
  • [6] Biomechanical study of proximal adjacent segment degeneration after posterior lumbar interbody fusion and fixation: a finite element analysis
    Jiang, Shuai
    Li, Weishi
    JOURNAL OF ORTHOPAEDIC SURGERY AND RESEARCH, 2019, 14 (1)
  • [7] Biomechanical Evaluation of the Sacral Slope on the Adjacent Segment in Transforaminal Lumbar Interbody Fusion: A Finite Element Analysis
    Ke, Wencan
    Wang, Bingjin
    Hua, Wenbin
    Lu, Saideng
    Li, Xingsheng
    Yang, Cao
    WORLD NEUROSURGERY, 2020, 133 : E84 - E88
  • [8] Biomechanical Evaluation of Transforaminal Lumbar Interbody Fusion and Oblique Lumbar Interbody Fusion on the Adjacent Segment: A Finite Element Analysis
    Wang, Bingjin
    Hua, Wenbin
    Ke, Wencan
    Lu, Saideng
    Li, Xingsheng
    Zeng, Xianlin
    Yang, Cao
    WORLD NEUROSURGERY, 2019, 126 : E819 - E824
  • [9] Biomechanical effects of an oblique lumbar interbody fusion combined with posterior augmentation: a finite element analysis
    Shengjia Huang
    Shaoxiong Min
    Suwei Wang
    Anmin Jin
    BMC Musculoskeletal Disorders, 23
  • [10] Decisive factor in increase of loading at adjacent segments after lumbar fusion: operative technique, pedicle screws, or fusion itself. - biomechanical analysis using finite element
    Park, Joon-Hee
    Kim, Ho-Joong
    Kang, Kyoung-Tak
    Kim, Ka-yeon
    Chun, Heoung-Jae
    Moon, Seong-Hwan
    Lee, Hwan-Mo
    FOURTH INTERNATIONAL CONFERENCE ON EXPERIMENTAL MECHANICS, 2010, 7522