The biomechanical effect of lumbopelvic distance reduction on reconstruction after total sacrectomy: a comparative finite element analysis of four techniques

被引:0
|
作者
Turbucz, Mate [1 ,2 ]
Pokorni, Agoston Jakab [1 ,2 ]
Hajnal, Benjamin [1 ,2 ]
Koch, Kristof [1 ,3 ]
Szoverfi, Zsolt [3 ]
Varga, Peter Pal [3 ]
Lazary, Aron [3 ,4 ]
Eltes, Peter Endre [2 ,3 ,4 ]
机构
[1] Semmelweis Univ, Sch PhD Stud, Ulloi Str 26, Budapest, Hungary
[2] Natl Ctr Spinal Disorders, In Sil Biomech Lab, Kiralyhago Str 1-3, Budapest, Hungary
[3] Natl Ctr Spinal Disorders, Kiralyhago Str 1-3, H-1126 Budapest, Hungary
[4] Semmelweis Univ, Dept Spine Surg, Dept Orthopaed, Ulloi Str 78-b, H-1082 Budapest, Hungary
来源
SPINE JOURNAL | 2024年 / 24卷 / 10期
基金
匈牙利科学研究基金会;
关键词
Biomechanics; Finite element analysis; Lumbopelvic distance reduction; Lumbopelvic fixation; Lumbopelvic reconstruction; Lumbopelvic stabilization; Total sacrectomy; LUMBAR MOTION SEGMENT; SACRAL TUMORS; MECHANICAL-PROPERTIES; ROD INSTRUMENTATION; CALIBRATION METHOD; 4-ROD TECHNIQUE; PELVIC RING; MODEL; SPINE; BONE;
D O I
10.1016/j.spinee.2024.04.024
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
BACKGROUND CONTEXT: Following total sacrectomy, lumbopelvic reconstruction is essential to restore continuity between the lumbar spine and pelvis. However, to achieve long-term clinical stability, bony fusion between the lumbar spine and the pelvic ring is crucial. Reduction of the lumbopelvic distance can promote successful bony fusion. Although many lumbopelvic reconstruction techniques (LPRTs) have been previously analyzed, the biomechanical effect of lumbopelvic distance reduction (LPDR) has not been investigated yet. PURPOSE: To evaluate and compare the biomechanical characteristics of four different LPRTs while considering the effect of LPDR. STUDY DESIGN/SETTING: A comparative finite element (FE) study. METHODS: The FE models following total sacrectomy were developed to analyze four different LPRTs, with and without LPDR. The closed-loop reconstruction (CLR), the sacral-rod reconstruction (SRR), the four-rod reconstruction (FRR), and the improved compound reconstruction (ICR) techniques were analyzed in flexion, extension, lateral bending, and axial rotation. Lumbopelvic stability was assessed through the shift-down displacement and the relative sagittal rotation of L5, while implant safety was evaluated based on the stress state at the bone-implant interface and within the rods. RESULTS: Regardless of LPDR, both the shift-down displacement and relative sagittal rotation of L5 consistently ranked the LPRTs as ICR25% in CLR, by 61% in SRR, by 15% in FRR, and by 46% in ICR, as well as reduced the relative sagittal rotation values by 21% in CLR, by 73% in SRR, by 11% in FRR, and by 53% in ICR. Considering the stress at the bone- implant interface, without LPDR, the ICR yielded the smallest stress values for flexion, lateral bending, and axial rotation with 131.4 MPa, 68.2 MPa, and 70.3 MPa, respectively, and the second smallest in extension with 36.1 MPa. Due to LPDR, these stress values were reduced by 31% in flexion, by 17% in extension, by 29% in lateral bending, and by 29% in axial rotation. Within the rods, without LPDR, the ICR yielded the smallest stress values for flexion, extension, lateral bending, and axial rotation with 346.5 MPa, 108.0 MPa, 186.2 MPa, and 199.7 MPa, respectively. With LPDR, these stress values were reduced by 16% in flexion, by 9% in extension, by 11% in lateral CONCLUSIONS: LPDR significantly improved both lumbopelvic stability and implant safety in all reconstruction techniques after total sacrectomy. LPDR reduced the shift-down displacement of L5, the relative sagittal rotation of L5, and the stress values at the bone-implant interface. Furthermore, in the ICR and SRR techniques, LPDR decreased the peak stress values within the rods. All four investigated LPRTs demonstrated suitability for lumbopelvic reconstruction, with the ICR following total sacrectomy; therefore, it has the potential to impact the design of custom-made 3D-printed or traditional LPRTs. However, to confirm the findings of the current FE study, longterm clinical trials are recommended.
引用
收藏
页码:1981 / 1992
页数:12
相关论文
共 50 条
  • [31] The effect of screw tunnels on the biomechanical stability of vertebral body after pedicle screws removal: a finite element analysis
    Liu, Jia-Ming
    Zhang, Yu
    Zhou, Yang
    Chen, Xuan-Yin
    Huang, Shan-Hu
    Hua, Zi-Kai
    Liu, Zhi-Li
    INTERNATIONAL ORTHOPAEDICS, 2017, 41 (06) : 1183 - 1187
  • [32] The effect of screw tunnels on the biomechanical stability of vertebral body after pedicle screws removal: a finite element analysis
    Jia-Ming Liu
    Yu Zhang
    Yang Zhou
    Xuan-Yin Chen
    Shan-Hu Huang
    Zi-Kai Hua
    Zhi-Li Liu
    International Orthopaedics, 2017, 41 : 1183 - 1187
  • [33] Biomechanical Effects of Tibial Stems with Different Structures on Human Knee Joint after Total Knee Arthroplasty: A Finite Element Analysis
    Meng Zhang
    Kaiwen Zhang
    He Gong
    Journal of Bionic Engineering, 2022, 19 : 197 - 208
  • [34] Biomechanical Effects of Tibial Stems with Different Structures on Human Knee Joint after Total Knee Arthroplasty: A Finite Element Analysis
    Zhang, Meng
    Zhang, Kaiwen
    Gong, He
    JOURNAL OF BIONIC ENGINEERING, 2022, 19 (01): : 197 - 208
  • [35] Gait-simulating fatigue loading analysis and sagittal alignment failure of spinal pelvic reconstruction after total sacrectomy: comparison of 3 techniques Laboratory investigation
    Clark, Aaron J.
    Tang, Jessica A.
    Leasure, Jeremi M.
    Ivan, Michael E.
    Kondrashov, Dimitriy
    Buckley, Jenni M.
    Deviren, Vedat
    Ames, Christopher P.
    JOURNAL OF NEUROSURGERY-SPINE, 2014, 20 (04) : 364 - 370
  • [36] Finite element analysis of the effect of framework material and thickness on the biomechanical performance of 'All-on-Four' full-arch prosthesis
    Shash, Yomna H.
    El-Wakad, Mohamed T.
    Eldosoky, Mohamed A. A.
    Dohiem, Mohamed M.
    COMPUTER METHODS IN BIOMECHANICS AND BIOMEDICAL ENGINEERING, 2024,
  • [37] Biomechanical effect of different plate-to-disc distance on surgical and adjacent segment in anterior cervical discectomy and fusion - a finite element analysis
    Xing Guo
    Jiaming Zhou
    Yueyang Tian
    Liang Kang
    Yuan Xue
    BMC Musculoskeletal Disorders, 22
  • [38] Biomechanical effect of different plate-to-disc distance on surgical and adjacent segment in anterior cervical discectomy and fusion - a finite element analysis
    Guo, Xing
    Zhou, Jiaming
    Tian, Yueyang
    Kang, Liang
    Xue, Yuan
    BMC MUSCULOSKELETAL DISORDERS, 2021, 22 (01)
  • [39] Biomechanical effect after Coflex and Coflex rivet implantation for segmental instability at surgical and adjacent segments: a finite element analysis
    Lo, Cheng-Chan
    Tsai, Kai-Jow
    Chen, Shih-Hao
    Zhong, Zheng-Cheng
    Hung, Chinghua
    COMPUTER METHODS IN BIOMECHANICS AND BIOMEDICAL ENGINEERING, 2011, 14 (11) : 969 - 978
  • [40] Effect of Anterior Implant Position on Biomechanical Performance in the Maxillary All-on-Four Treatment: A 3-D Finite Element Analysis
    Sezer, Taygun
    Kilic, Kerem
    Esim, Emir
    JOURNAL OF ORAL IMPLANTOLOGY, 2022, 48 (03) : 177 - 186