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The lumbar intervertebral disc exhibits a complex physiological structure with interactions between various segments, and its components are extremely complex. The material properties of different components in the lumbar intervertebral disc, especially the water content (undergoing dynamic change as influenced by age, degeneration, mechanical loading, and proteoglycan content) - critically determine its mechanical properties. When the lumbar intervertebral disc is under continuous pressure, water seeps out, and after the pressure is removed, water re-infiltrates. This dynamic fluid exchange process directly affects the mechanical properties of the lumbar intervertebral disc, while previous isotropic modeling methods have been unable to accurately reflect such solid-liquid phase behaviors. To explore the load-bearing mechanism of the lumbar intervertebral disc and establish a more realistic mechanical model of the lumbar intervertebral disc, this study developed a solid-liquid biphasic, fiber-reinforced finite element model. This model was used to simulate the four movements of the human lumbar spine in daily life, namely flexion, extension, axial rotation, and lateral bending. The fluid pressure, effective solid stress, and liquid pressure-bearing ratio of the annulus fibrosus and nucleus pulposus of different lumbar intervertebral discs were compared and analyzed under the movements. Under all the movements, the fluid pressure distribution was closer to the nucleus pulposus, while the effective solid stress distribution was more concentrated in the outer annulus fibrosus. In terms of fluid pressure, the maximum fluid pressure of the lumbar intervertebral disc during lateral bending was 1.95 MPa, significantly higher than the maximum fluid pressure under other movements. Meanwhile, the maximum effective solid stress of the lumbar intervertebral disc during flexion was 2.43 MPa, markedly higher than the maximum effective solid stress under other movements. Overall, the liquid pressure-bearing ratio under axial rotation was smaller than that under other movements. Based on the solid-liquid biphasic modeling method, this study more accurately revealed the dominant role of the liquid phase in the daily load-bearing process of the lumbar intervertebral disc and the solid-phase mechanical mechanism of the annulus fibrosus load-bearing, and more effectively predicted the solid-liquid phase co-load-bearing mechanism of the lumbar intervertebral disc in daily life.
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http://dx.doi.org/10.7507/1001-5515.202310021 | DOI Listing |
Global Spine J
September 2025
Department of Orthopaedic Surgery, Osaka Metropolitan University Graduate School of Medicine, Osaka, Japan.
Study DesignRetrospective cohort study.ObjectiveCondoliase is a chemonucleolysis for lumbar disc herniation (LDH) that enzymatically degrades herniated disc material with high specificity for chondroitin sulfate and hyaluronic acid. Few studies have compared condoliase treatment with surgical treatments.
View Article and Find Full Text PDFAnn Biomed Eng
September 2025
LaBS - Department of Chemistry, Materials and Chemical Engineering "Giulio Natta", Politecnico di Milano, Piazza Leonardo da Vinci 32, 20133, Milano, Italy.
Understanding spine biomechanics is essential for maintaining posture under static and dynamic conditions, relying on a balance of muscular and gravitational forces. Computational musculoskeletal (MSK) models are increasingly being used in biomechanical research as non-invasive alternatives to in vivo and in vitro methods. Two main MSK modeling strategies are multibody (MB) models, which simplify the spine using rigid vertebrae and intervertebral joints to study muscle recruitment, and finite element (FE) models, which provide detailed tissue representation but often rely on oversimplified loading conditions.
View Article and Find Full Text PDFJ Int Med Res
September 2025
Department of Orthopedics, Sanshui Hospital, Zhujiang Hospital, Southern Medical University, China.
ObjectiveTo investigate the analgesic effects of acetaminophen-mannitol injections after endoscopic lumbar discectomy.MethodsThis is a prospective case-control study involving 60 patients who were randomly selected from those who underwent endoscopic lumbar discectomy for lumbar disc herniation or lumbar spinal stenosis at Sanshui District People's Hospital of Foshan between April and September 2024. Two groups were formed by randomly assigning patients, with each group containing 30 individuals.
View Article and Find Full Text PDFJ Neurosurg Spine
September 2025
1Clinical College of Orthopedics, Tianjin Medical University, Tianjin.
Objective: The aim of this study was to compare the predictive efficacy of quantitative CT (QCT)-based endplate volumetric bone mineral density (EP-vBMD) and MRI-based endplate vertebral bone quality (EBQ) score for cage subsidence (CS) after lateral lumbar interbody fusion (LLIF).
Methods: A retrospective study was conducted on patients who underwent single-level LLIF in conjunction with pedicle screw fixation at the authors' institution between January 2019 and April 2023. The volumetric bone mineral density (vBMD) was measured based on preoperative CT using phantom-less QCT software.
Purpose: This study examines the association between neurogenic injury and lumbar intervertebral disc degeneration (LDD) in tethered cord syndrome (TCS) by comparing lumbar sagittal parameters and disc degeneration between patients with normal and abnormal somatosensory evoked potential (SSEP) findings.
Methods: We retrospectively analyzed clinical data from 43 patients diagnosed with TCS between July 2018 and July 2024. Based on tibial nerve somatosensory evoked potential (SSEP) examination results, patients were categorized into SSEP-normal and SSEP-abnormal groups.