Literature DB >> 29154300

Fracture generation in human vertebrae under compression loading: The influence of pedicle preservation and bone mineral density on in vitro fracture behavior.

Michael Kraxenberger1, Christian Schröder1, Tobias Geith2, Andreas Büttner3, Christoph von Schulze-Pellengahr4, Christof Birkenmaier1, Peter E Müller1, Volkmar Jansson1, Bernd Wegener1.   

Abstract

BACKGROUND: Fractured vertebral bodies are a common and wide spread health issue.
OBJECTIVE: The purpose of this study was to develop a standardized method to experimentally generate compression fractures in vertebral bodies. The influence of the pedicles has been investigated with regards to the fracture behavior. The correlation between bone mineral density (BMD), the cause of fractures and the fracture behavior was investigated.
METHODS: Twenty-one fresh frozen human lumbar spines were examined for bone mineral density (BMD) by means of quantitative computed tomography (qCT). All soft tissue was removed, vertebrae were carefully separated from each other and the exposed cranial and caudal endplates were covered with a thin layer of resin to generate a plane and homogeneous surface. A total of 80 vertebral bodies were tested until fracture.
RESULTS: A good positive correlation was found between BMD, fracture compression force and stiffness of the vertebral body. No significant differences were found between the fractures generated in vertebral bodies with and without pedicles, respectively.
CONCLUSIONS: Our model represents a consolidation of already existing testing devices. The comparative measurement of the BMD and the fracture behavior shows validity. In contrast to other authors, the force was applied to the whole vertebral body. Furthermore the upper and lower plates were not parallelized and therefore the natural anatomic shape was imitated. Fracture behavior was not altered by removing the pedicles.

Entities:  

Keywords:  Spine; bone mineral density; fracture force; osteoporosis; pedicle; vertebral body

Mesh:

Year:  2018        PMID: 29154300     DOI: 10.3233/THC-171086

Source DB:  PubMed          Journal:  Technol Health Care        ISSN: 0928-7329            Impact factor:   1.285


  1 in total

1.  Biomechanics of the unilateral posterosuperior, unipedicular, and bipedicular approaches for treatment by percutaneous vertebroplasty: a comparative study.

Authors:  Chenxi Gu; Anquan Huang; Yefeng Wang; Dongzhu Liang; Peidong Sun; Zhenfeng Zhang; Xiaoqiang Cai; Jun Shen; Jun Ou-Yang; Tianming Zou; Xiao Yu
Journal:  Am J Transl Res       Date:  2022-05-15       Impact factor: 3.940

  1 in total

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