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Frontiers in Bioengineering and Biotechnology· 2026Q1

Three-dimensional finite element analysis of translaminar lag screw designs for L5 bilateral spondylolysis

Feng Li, Xingguo Tan, Tao Zhang, Hua Liu et al.

Short summary

A 3D finite element analysis of translaminar lag screws for L5 spondylolysis shows that while all tested designs (4.5mm, 4.0mm, 3.5mm; solid and cannulated) effectively restore stability, the 4.5mm solid screw exhibits the most favorable biomechanical profile with lowest implant stress and best displacement control.

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Key points

  • All translaminar lag screw designs (4.5mm, 4.0mm, 3.5mm; solid and cannulated) effectively restored range of motion in L5 spondylolysis models.
  • Larger diameter (4.5 mm) and solid screw designs provided slightly better control of model displacement.
  • Increasing screw diameter significantly reduced stress concentrations in the pars interarticularis and fixation screws.
  • The 4.5 mm solid screw exhibited the most favorable biomechanical profile, with the lowest implant stress and effective graft displacement control.

AI-generated from the title and abstract; the full text is not read.

Abstract

Purpose: This finite element study aimed to quantitatively compare the biomechanical properties of translaminar lag screws with different diameters and structural designs for the surgical repair of L5 bilateral spondylolysis, to provide evidence for individualized screw selection. Methods: An intact model of L4-S1 segment (Model A) and a L5 bilateral spondylolysis model (Model B) were established using Mimics, Geomagic, and SolidWorks. Additional models were constructed incorporating translaminar lag screws of varying diameters: 4.5 mm (solid, Model C1; cannulated, Model C2), 4.0 mm (solid, Model D1; cannulated, Model D2), and 3.5 mm (solid, Model E1; cannulated, Model E2). Following model validation, a 400 N axial load and a 10 N m moment were applied to simulate five conditions. Analyzed parameters included range of motion (ROM), maximum displacement, and maximum von Mises stress in the disc, pars interarticularis, and fixation screws. Results: Compared to the intact model (A), the spondylolysis model (B) showed significant instability. All fixation models (C1-E2) effectively restored ROM to intact levels, regardless of screw diameter or structural design. Larger-diameter (4.5 mm) and solid designs demonstrated slightly better control of model displacement. Increasing diameter significantly reduced stress concentrations within the pars interarticularis and fixation screws. For a given diameter, cannulated screws sustained higher stress than solid screws. The 3.5 mm cannulated screw exhibited the highest screw stress, approaching the yield strength of titanium alloy under rotational loading. Conclusion: All translaminar lag screw designs can effectively restore stability in L5 spondylolysis. While different diameters and structural designs have a minor impact on stability restoration, they significantly affect implant stress. In this specific patient-derived model, the 4.5 mm solid screw demonstrated the most favorable biomechanical profile, with the lowest stress on the implant and effective control of graft displacement. These findings suggest a potential mechanical advantage for 4.5 mm solid screws; however, confirmation through multi-specimen studies or clinical trials is required before broader clinical recommendations can be made.

The authors' abstract, as published at the source. Frontiers in Bioengineering and Biotechnology, 2026 · DOI ↗

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Field: Pathology and Forensic Medicine

Pathology and Forensic MedicineMedicine