Pathogenesis of Vertebral Anterior Wedge Deformity : A 2-Stage Process?

被引:27
作者
Landham, Priyan R. [1 ]
Gilbert, Samuel J. [1 ]
Baker-Rand, Holly L. A. [1 ]
Pollintine, Phillip [1 ]
Brown, Katharine A. Robson [2 ]
Adams, Michael A. [1 ]
Dolan, Patricia [1 ]
机构
[1] Univ Bristol, Ctr Comparat & Clin Anat, Bristol, Avon, England
[2] Univ Bristol, Sch Archaeol & Anthropol, Bristol, Avon, England
关键词
vertebral body; endplate; fracture; anterior wedge deformity; kyphosis; osteoporosis; biomechanics; thoracolumbar spine; cadaveric; BONE-MINERAL DENSITY; INTERVERTEBRAL DISC DEGENERATION; END-PLATE; COMPRESSION FRACTURES; STRESS DISTRIBUTIONS; ADJACENT VERTEBRAE; LUMBAR VERTEBRAE; TRABECULAR BONE; BODY FRACTURES; LOAD-BEARING;
D O I
10.1097/BRS.0000000000000905
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Study Design. Biomechanical and radiographical study on cadaveric spines. Objective. To explain the pathogenesis of vertebral "anterior wedge" deformity, which causes senile kyphosis. Summary of Background Data. This deformity arises with minimal trauma and is difficult to reproduce in cadaveric spines. We hypothesize that wedging is created by a 2-stage process. First, excessive loading damages a vertebral endplate and decompresses the adjacent intervertebral disc. This alters load sharing between the vertebral body cortex and trabeculae so that subsequent cyclic loading causes progressive collapse of the unsupported anterior cortex. Methods. Thirty-four cadaveric thoracolumbar "motion segments," aged 70 to 98 years, were positioned in flexion and overloaded in compression. Physiologically reasonable cyclic compressive loading was then applied to each flexed specimen, at progressively higher loads, for up to 2 hours. Before and after initial overload and again after cyclic loading, the distribution of loading on the vertebra was assessed from measurements of compressive stress within the adjacent disc. These "stress profiles" were repeated in the neutral, flexed, and extended postures. Progressive vertebral body deformity was assessed radiographically. Results. Compressive overload induced endplate fracture at an average force of 2.31 kN. There was minimal anterior wedging, but pressure in the adjacent disc nucleus (in flexion) fell by an average of 55% and neural arch load bearing increased by 166%. Subsequent cyclic loading exaggerated these changes and concentrated compressive stress within the anterior annulus. After both stages, height of the anterior and posterior vertebral cortexes was reduced by 32% and 12%, respectively, so that anterior wedging of the vertebral body increased from 5.0 degrees to 11.4 degrees on average. All changes were highly significant (P < 0.001). Conclusion. Anterior wedge deformities can be created consistently by a 2-stage process involving initial endplate damage, followed by progressive collapse of the anterior cortex. Detecting initial endplate damage may be important to minimize vertebral deformity in patients with osteoporosis.
引用
收藏
页码:902 / 908
页数:7
相关论文
共 57 条
  • [1] Mechanical initiation of intervertebral disc degeneration
    Adams, MA
    Freeman, BJC
    Morrison, HP
    Nelson, IW
    Dolan, P
    [J]. SPINE, 2000, 25 (13) : 1625 - 1636
  • [2] 'Stress' distributions inside intervertebral discs - The effects of age and degeneration
    Adams, MA
    McNally, DS
    Dolan, P
    [J]. JOURNAL OF BONE AND JOINT SURGERY-BRITISH VOLUME, 1996, 78B (06): : 965 - 972
  • [3] Adams MA., 2013, The biomechanics of back pain, V3rd
  • [4] Intervertebral disc degeneration can predispose to anterior vertebral fractures in the thoracolumbar spine
    Adams, Michael A.
    Pollintine, Phillip
    Tobias, Jon H.
    Wakley, Glenn K.
    Dolan, Patricia
    [J]. JOURNAL OF BONE AND MINERAL RESEARCH, 2006, 21 (09) : 1409 - 1416
  • [5] Biomechanics of vertebral compression fractures and clinical application
    Adams, Michael A.
    Dolan, Patricia
    [J]. ARCHIVES OF ORTHOPAEDIC AND TRAUMA SURGERY, 2011, 131 (12) : 1703 - 1710
  • [6] The effect on anterior column loading due to different vertebral augmentation techniques
    Ananthakrishnan, D
    Berven, S
    Deviren, V
    Cheng, K
    Lotz, JC
    Xu, Z
    Puttlitz, CM
    [J]. CLINICAL BIOMECHANICS, 2005, 20 (01) : 25 - 31
  • [7] Inhomogeneity of human vertebral cancellous bone: Systematic density and structure patterns inside the vertebral body
    Banse, X
    Devogelaer, JP
    Munting, E
    Delloye, C
    Cornu, O
    Grynpas, M
    [J]. BONE, 2001, 28 (05) : 563 - 571
  • [8] Adjacent vertebral failure after vertebroplasty: a biomechanical study of low-modulus PMMA cement
    Boger, Andreas
    Heini, Paul
    Markus, Windolf
    Schneider, Erich
    [J]. EUROPEAN SPINE JOURNAL, 2007, 16 (12) : 2118 - 2125
  • [9] THE INFLUENCE OF VERTEBRAL BODY FRACTURE, INTRADISCAL INJECTION, AND PARTIAL DISCECTOMY ON THE RADIAL BULGE AND HEIGHT OF HUMAN LUMBAR DISKS
    BRINCKMANN, P
    HORST, M
    [J]. SPINE, 1985, 10 (02) : 138 - 145
  • [10] BRINCKMANN P, 1988, CLIN BIOMECH, V3, pS1