» Articles » PMID: 20392660

Validation of a C2-C7 Cervical Spine Finite Element Model Using Specimen-specific Flexibility Data

Overview
Journal Med Eng Phys
Date 2010 Apr 16
PMID 20392660
Citations 42
Authors
Affiliations
Soon will be listed here.
Abstract

This study presents a specimen-specific C2-C7 cervical spine finite element model that was developed using multiblock meshing techniques. The model was validated using in-house experimental flexibility data obtained from the cadaveric specimen used for mesh development. The C2-C7 specimen was subjected to pure continuous moments up to +/-1.0 N m in flexion, extension, lateral bending, and axial rotation, and the motions at each level were obtained. Additionally, the specimen was divided into C2-C3, C4-C5, and C6-C7 functional spinal units (FSUs) which were tested in the intact state as well as after sequential removal of the interspinous, ligamentum flavum, and capsular ligaments. The finite element model was initially assigned baseline material properties based on the literature, but was calibrated using the experimental motion data which was obtained in-house, while utlizing the ranges of material property values as reported in the literature. The calibrated model provided good agreement with the nonlinear experimental loading curves, and can be used to further study the response of the cervical spine to various biomechanical investigations.

Citing Articles

Biomechanical analysis of a newly designed and 3D printed plate-locking interbody cage: an observational study of finite element analysis.

Ni S, Yang R, Liu S, Hu Y Sci Rep. 2025; 15(1):3534.

PMID: 39875489 PMC: 11775238. DOI: 10.1038/s41598-025-88151-9.


Comparing adjacent segment biomechanics between anterior and posterior cervical fusion using patient-specific finite element modeling.

Harinathan B, Jebaseelan D, Yoganandan N, Vedantam A Asian Spine J. 2025; 18(6):777-793.

PMID: 39763354 PMC: 11711163. DOI: 10.31616/asj.2024.0179.


Restoration of physiologic loading after engineered disc implantation mitigates immobilization-induced facet joint and paraspinal muscle degeneration.

Gullbrand S, Kiapour A, Barrett C, Fainor M, Orozco B, Hilliard R Acta Biomater. 2024; 192():128-139.

PMID: 39653318 PMC: 11735281. DOI: 10.1016/j.actbio.2024.12.014.


Finite element analysis of two-level discontinuous cervical hybrid revision surgery strategy to reduce biomechanical responses of adjacent segments.

Liang W, Sun D, Han B, Yang Y, Yin P, Hai Y JOR Spine. 2024; 7(4):e70008.

PMID: 39483258 PMC: 11525814. DOI: 10.1002/jsp2.70008.


Anterior percutaneous full-endoscopic transcorporeal decompression for cervical disc herniation: a finite element analysis and long-term follow-up study.

Du Q, Wang Z, Zheng H, Wang S, Cao G, Xin Z BMC Musculoskelet Disord. 2024; 25(1):639.

PMID: 39134982 PMC: 11321056. DOI: 10.1186/s12891-024-07754-x.