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    Biomechanical In Vitro and Finite Element Study on Different Sagittal Alignment Postures of the Lumbar Spine During Multiaxial Daily Motion

    Source: Journal of Biomechanical Engineering:;2022:;volume( 144 ):;issue: 007::page 71001-1
    Author:
    Wilmanns, Nadja
    ,
    Beckmann, Agnes
    ,
    Nicolini, Luis Fernando
    ,
    Herren, Christian
    ,
    Sobottke, Rolf
    ,
    Hildebrand, Frank
    ,
    Siewe, Jan
    ,
    Kobbe, Philipp
    ,
    Markert, Bernd
    ,
    Stoffel, Marcus
    DOI: 10.1115/1.4053083
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Lumbar lordotic correction (LLC), the gold standard treatment for sagittal spinal malalignment (SMA), and its effect on sagittal balance have been critically discussed in recent studies. This paper assesses the biomechanical response of the spinal components to LLC as an additional factor for the evaluation of LLC. Human lumbar spines (L2L5) were loaded with combined bending moments in flexion (Flex)/extension (Ex) or lateral bending (LatBend) and axial rotation (AxRot) in a physiological environment. We examined the dependency of AxRot range of motion (RoM) on the applied bending moment. The results were used to validate a finite element (FE) model of the lumbar spine. With this model, the biomechanical response of the intervertebral discs (IVD) and facet joints under daily motion was studied for different sagittal alignment postures, simulated by a motion in Flex/Ex direction. Applied bending moments decreased AxRot RoM significantly (all P <
     
     0.001). A stronger decline of AxRot RoM for Ex than for Flex direction was observed (all P <
     
     0.0001). Our simulated results largely agreed with the experimental data (all R2 >
     
     0.79). During the daily motion, the IVD was loaded higher with increasing lumbar lordosis (LL) for all evaluated values at L2L3 and L3L4 and posterior annulus stress (AS) at L4L5 (all P <
     
     0.0476). The results of this study indicate that LLC with large extensions of LL may not always be advantageous regarding the biomechanical loading of the IVD. This finding may be used to improve the planning process of LLC treatments.
     
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      Biomechanical In Vitro and Finite Element Study on Different Sagittal Alignment Postures of the Lumbar Spine During Multiaxial Daily Motion

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    contributor authorWilmanns, Nadja
    contributor authorBeckmann, Agnes
    contributor authorNicolini, Luis Fernando
    contributor authorHerren, Christian
    contributor authorSobottke, Rolf
    contributor authorHildebrand, Frank
    contributor authorSiewe, Jan
    contributor authorKobbe, Philipp
    contributor authorMarkert, Bernd
    contributor authorStoffel, Marcus
    date accessioned2022-05-08T09:42:07Z
    date available2022-05-08T09:42:07Z
    date copyright2/15/2022 12:00:00 AM
    date issued2022
    identifier issn0148-0731
    identifier otherbio_144_07_071001.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4285474
    description abstractLumbar lordotic correction (LLC), the gold standard treatment for sagittal spinal malalignment (SMA), and its effect on sagittal balance have been critically discussed in recent studies. This paper assesses the biomechanical response of the spinal components to LLC as an additional factor for the evaluation of LLC. Human lumbar spines (L2L5) were loaded with combined bending moments in flexion (Flex)/extension (Ex) or lateral bending (LatBend) and axial rotation (AxRot) in a physiological environment. We examined the dependency of AxRot range of motion (RoM) on the applied bending moment. The results were used to validate a finite element (FE) model of the lumbar spine. With this model, the biomechanical response of the intervertebral discs (IVD) and facet joints under daily motion was studied for different sagittal alignment postures, simulated by a motion in Flex/Ex direction. Applied bending moments decreased AxRot RoM significantly (all P <
    description abstract 0.001). A stronger decline of AxRot RoM for Ex than for Flex direction was observed (all P <
    description abstract 0.0001). Our simulated results largely agreed with the experimental data (all R2 >
    description abstract 0.79). During the daily motion, the IVD was loaded higher with increasing lumbar lordosis (LL) for all evaluated values at L2L3 and L3L4 and posterior annulus stress (AS) at L4L5 (all P <
    description abstract 0.0476). The results of this study indicate that LLC with large extensions of LL may not always be advantageous regarding the biomechanical loading of the IVD. This finding may be used to improve the planning process of LLC treatments.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleBiomechanical In Vitro and Finite Element Study on Different Sagittal Alignment Postures of the Lumbar Spine During Multiaxial Daily Motion
    typeJournal Paper
    journal volume144
    journal issue7
    journal titleJournal of Biomechanical Engineering
    identifier doi10.1115/1.4053083
    journal fristpage71001-1
    journal lastpage71001-9
    page9
    treeJournal of Biomechanical Engineering:;2022:;volume( 144 ):;issue: 007
    contenttypeFulltext
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