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1.
Sci Rep ; 11(1): 3595, 2021 02 11.
Artigo em Inglês | MEDLINE | ID: mdl-33574504

RESUMO

Pedicle subtraction osteotomy (PSO) is an invasive surgical technique allowing the restoration of a well-balanced sagittal profile, however, the risks of pseudarthrosis and instrumentation breakage are still high. Literature studied primary stability and posterior instrumentation loads, neglecting the load shared by the anterior column, which is fundamental to promote fusion early after surgery. The study aimed at quantifying the load-sharing occurring after PSO procedure across the ventral spinal structures and the posterior instrumentation, as affected by simple bilateral fixation alone, with interbody cages adjacent to PSO level and supplementary accessory rods. Lumbar spine segments were loaded in vitro under flexion-extension, lateral bending, and torsion using an established spine tester. Digital image correlation (DIC) and strain-gauge (SG) analyses measured, respectively, the full-field strain distribution on the ventral surface of the spine and the local strain on posterior primary rods. Ventral strains considerably decreased following PSO and instrumentation, confirming the effectiveness of posterior load-sharing. Supplemental accessory rods considerably reduced the posterior rod strains only with interbody cages, but the ventral strains were unaffected: this indicates that the load transfer across the osteotomy could be promoted, thus explaining the higher fusion rate with decreased rod fracture risk reported in clinical literature.


Assuntos
Lordose/cirurgia , Vértebras Lombares/cirurgia , Região Lombossacral/cirurgia , Osteotomia/métodos , Fenômenos Biomecânicos , Biofísica , Feminino , Humanos , Lordose/patologia , Vértebras Lombares/patologia , Região Lombossacral/patologia , Masculino , Pessoa de Meia-Idade , Parafusos Pediculares , Amplitude de Movimento Articular/fisiologia , Fusão Vertebral
2.
Crit Rev Biomed Eng ; 47(4): 295-322, 2019.
Artigo em Inglês | MEDLINE | ID: mdl-31679261

RESUMO

This paper offers a comprehensive systematic review of biomechanical research on the spine and on in vitro and numerical methods of investigation. This review focuses on interventions on the ligaments, on the facets, and on the lamina (facetectomies, laminectomies, and laminoplasties). Surgical interventions on the facets and lamina in some cases yield dissatisfactory clinical follow-up. Patient outcome is strongly related to the effects that such interventions have on the biomechanical functionality of the spine. The papers examined include those addressing the untreated spine (range of motion and stiffness), but the focus is on experimental and numerical investigations studying the role of the ligaments and of the posterior structures (including their role in granting spine stability and the biomechanical behavior of each ligament). The papers were classified based on the different investigation approaches. In vitro experiments exploit dedicated biomechanical spine testers to measure the mechanical properties of physical specimens. Numerical modeling (multibody dynamics, finite-element analysis) allows predicting the effect of different conditions. All the papers indicate that interventions on the ligaments, facets, and lamina increase range of motion and decrease stability. The quantitative results show great variability across studies. This review shows how it is possible to use in vitro and numerical methods to investigate the biomechanical effects of surgical interventions.


Assuntos
Fenômenos Biomecânicos/fisiologia , Modelos Biológicos , Procedimentos Ortopédicos , Coluna Vertebral , Simulação por Computador , Humanos , Coluna Vertebral/fisiologia , Coluna Vertebral/fisiopatologia , Coluna Vertebral/cirurgia
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