Finite element modeling of anatomical constitutional types of the lumbar spine and pelvis (Roussouly) for study of the biomechanical aspects

Introduction Sagittal morphotypes graded by Roussouly are characterized by specific biomechanics of the spinopelvic alignment (SPA) that can be investigated using the finite element (FE) modeling. The objective was to design three-dimensional realistic models simulating anatomical and constitution...

Full description

Saved in:
Bibliographic Details
Main Authors: Shulga Alexey E., Ulyanov Vladimir Yu., Rozhkova Yuliya Yu., Shuvalov Stanislav D.
Format: Article
Language:English
Published: Russian Ilizarov Scientific Center for Restorative Traumatology and Orthopaedics 2025-06-01
Series:Гений oртопедии
Subjects:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1849419143876444160
author Shulga Alexey E.
Ulyanov Vladimir Yu.
Rozhkova Yuliya Yu.
Shuvalov Stanislav D.
author_facet Shulga Alexey E.
Ulyanov Vladimir Yu.
Rozhkova Yuliya Yu.
Shuvalov Stanislav D.
author_sort Shulga Alexey E.
collection DOAJ
description Introduction Sagittal morphotypes graded by Roussouly are characterized by specific biomechanics of the spinopelvic alignment (SPA) that can be investigated using the finite element (FE) modeling. The objective was to design three-dimensional realistic models simulating anatomical and constitutional types LPA and evaluate deformity and strength of the models under compression. Materal and methods Lateral standing spondylograms of the skull, pelvis and upper third of the femur were produced for volunteers (n = 169) who agreed to participate in the study. Radiographs were interpreted with Surgimap 2.3.2.1.) and computed tomography (CT) of the SPA was performed for individuals (n = 5) with average sagittal parameters for each of the five Roussouly morphotypes (I, II, III, IIIA, IV). The CT findings were used to simulate (SolidWorks) five parametric finite element models of normal morphotypes of SPA and examine the deformity and strength. Results The highest von Mises stresses under compression were measured in the bodies and intervertebral discs (IVD) ThX–LI (2.961 MPa), posterior supporting structures LIV–SI (2.515 Mpa) with type I model; vertebral bodies and IVD of the thoracic and lumbar spine, mainly at the ThXII–LI (3.082 MPa) and LIV– LV (3.120 Mpa) levels with type II model; anterior aspects of the bodies and IVD ThXI–LII, posterior thirds of the bodies, pedicles and facet joints LI–SI (1.720 Mpa) with type III model; the bodies and intervertebral discs of the ThIX–LII vertebrae (1.811 MPa), posterior supporting structures of the LI–SI vertebrae (1.650 Mpa) with type IIIA model; in the spinous processes and articular portion of the arches of the LI–SI vertebrae (3.232 MPa) with type IV model. Discussion The lateral configuration of the SPA has a key effect on the segmental distribution of gravitational force and determines the specificity of the sagittal biomechanics of the spine, its resistance to dynamic loads and tendency to various degenerative pathologies. Conclusion Types III and IIIA were the most biomechanically balanced types, hypolordotic form (types I and II) was associated with overloaded anterior vertebral structures including intervertebral disc protrusion (IDP) and overloaded posterior supporting structures in case of hyperlordosis (type IV).
format Article
id doaj-art-df7c966f367d45eea389eca47dc1d6ed
institution Kabale University
issn 1028-4427
2542-131X
language English
publishDate 2025-06-01
publisher Russian Ilizarov Scientific Center for Restorative Traumatology and Orthopaedics
record_format Article
series Гений oртопедии
spelling doaj-art-df7c966f367d45eea389eca47dc1d6ed2025-08-20T03:32:14ZengRussian Ilizarov Scientific Center for Restorative Traumatology and OrthopaedicsГений oртопедии1028-44272542-131X2025-06-0131329730610.18019/1028-4427-2025-31-3-297-306Finite element modeling of anatomical constitutional types of the lumbar spine and pelvis (Roussouly) for study of the biomechanical aspectsShulga Alexey E.0Ulyanov Vladimir Yu.1Rozhkova Yuliya Yu.2Shuvalov Stanislav D.3Research Institute of Traumatology, Orthopedics and Neurosurgery of the Saratov State Medical University named after V.I. Razumovsky, Saratov, Russian FederationResearch Institute of Traumatology, Orthopedics and Neurosurgery of the Saratov State Medical University named after V.I. Razumovsky, Saratov, Russian FederationResearch Institute of Traumatology, Orthopedics and Neurosurgery of the Saratov State Medical University named after V.I. Razumovsky, Saratov, Russian FederationResearch Institute of Traumatology, Orthopedics and Neurosurgery of the Saratov State Medical University named after V.I. Razumovsky, Saratov, Russian FederationIntroduction Sagittal morphotypes graded by Roussouly are characterized by specific biomechanics of the spinopelvic alignment (SPA) that can be investigated using the finite element (FE) modeling. The objective was to design three-dimensional realistic models simulating anatomical and constitutional types LPA and evaluate deformity and strength of the models under compression. Materal and methods Lateral standing spondylograms of the skull, pelvis and upper third of the femur were produced for volunteers (n = 169) who agreed to participate in the study. Radiographs were interpreted with Surgimap 2.3.2.1.) and computed tomography (CT) of the SPA was performed for individuals (n = 5) with average sagittal parameters for each of the five Roussouly morphotypes (I, II, III, IIIA, IV). The CT findings were used to simulate (SolidWorks) five parametric finite element models of normal morphotypes of SPA and examine the deformity and strength. Results The highest von Mises stresses under compression were measured in the bodies and intervertebral discs (IVD) ThX–LI (2.961 MPa), posterior supporting structures LIV–SI (2.515 Mpa) with type I model; vertebral bodies and IVD of the thoracic and lumbar spine, mainly at the ThXII–LI (3.082 MPa) and LIV– LV (3.120 Mpa) levels with type II model; anterior aspects of the bodies and IVD ThXI–LII, posterior thirds of the bodies, pedicles and facet joints LI–SI (1.720 Mpa) with type III model; the bodies and intervertebral discs of the ThIX–LII vertebrae (1.811 MPa), posterior supporting structures of the LI–SI vertebrae (1.650 Mpa) with type IIIA model; in the spinous processes and articular portion of the arches of the LI–SI vertebrae (3.232 MPa) with type IV model. Discussion The lateral configuration of the SPA has a key effect on the segmental distribution of gravitational force and determines the specificity of the sagittal biomechanics of the spine, its resistance to dynamic loads and tendency to various degenerative pathologies. Conclusion Types III and IIIA were the most biomechanically balanced types, hypolordotic form (types I and II) was associated with overloaded anterior vertebral structures including intervertebral disc protrusion (IDP) and overloaded posterior supporting structures in case of hyperlordosis (type IV).spinesagittal balanceroussouly classificationmathematical modelingfinite element analysis
spellingShingle Shulga Alexey E.
Ulyanov Vladimir Yu.
Rozhkova Yuliya Yu.
Shuvalov Stanislav D.
Finite element modeling of anatomical constitutional types of the lumbar spine and pelvis (Roussouly) for study of the biomechanical aspects
Гений oртопедии
spine
sagittal balance
roussouly classification
mathematical modeling
finite element analysis
title Finite element modeling of anatomical constitutional types of the lumbar spine and pelvis (Roussouly) for study of the biomechanical aspects
title_full Finite element modeling of anatomical constitutional types of the lumbar spine and pelvis (Roussouly) for study of the biomechanical aspects
title_fullStr Finite element modeling of anatomical constitutional types of the lumbar spine and pelvis (Roussouly) for study of the biomechanical aspects
title_full_unstemmed Finite element modeling of anatomical constitutional types of the lumbar spine and pelvis (Roussouly) for study of the biomechanical aspects
title_short Finite element modeling of anatomical constitutional types of the lumbar spine and pelvis (Roussouly) for study of the biomechanical aspects
title_sort finite element modeling of anatomical constitutional types of the lumbar spine and pelvis roussouly for study of the biomechanical aspects
topic spine
sagittal balance
roussouly classification
mathematical modeling
finite element analysis
work_keys_str_mv AT shulgaalexeye finiteelementmodelingofanatomicalconstitutionaltypesofthelumbarspineandpelvisroussoulyforstudyofthebiomechanicalaspects
AT ulyanovvladimiryu finiteelementmodelingofanatomicalconstitutionaltypesofthelumbarspineandpelvisroussoulyforstudyofthebiomechanicalaspects
AT rozhkovayuliyayu finiteelementmodelingofanatomicalconstitutionaltypesofthelumbarspineandpelvisroussoulyforstudyofthebiomechanicalaspects
AT shuvalovstanislavd finiteelementmodelingofanatomicalconstitutionaltypesofthelumbarspineandpelvisroussoulyforstudyofthebiomechanicalaspects