Dynamic, six-axis stiffness matrix characteristics of the intact intervertebral disc and a disc replacement

被引:2
|
作者
Holsgrove, Timothy P. [1 ]
Gill, Harinderjit S. [1 ]
Miles, Anthony W. [1 ]
Gheduzzi, Sabina [1 ]
机构
[1] Univ Bath, Ctr Orthopaed Biomech, Bath BA2 7AY, Avon, England
关键词
Spine biomechanics; dynamic; stiffness; matrix; in vitro; total disc replacement; MOTION SEGMENT STIFFNESS; BIOMECHANICAL EVALUATION; AXIAL LOAD; LUMBAR; PORCINE; ARTHROPLASTY; KINEMATICS; BEHAVIOR; FUSION;
D O I
10.1177/0954411915610601
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Thorough pre-testing is critical in assessing the likely in vivo performance of spinal devices prior to clinical use. However, there is a lack of data available concerning the dynamic testing of lumbar (porcine model) total disc replacements in all six axes under preload conditions. The aim of this study was to provide new data comparing porcine lumbar spinal specimen stiffness between the intact state and after the implantation of an unconstrained total disc replacement, in 6 degrees of freedom. The dynamic, stiffness matrix testing of six porcine lumbar isolated disc specimens was completed using triangle waves at a test frequency of 0.1Hz. An axial preload of 500N was applied during all testing. Specimens were tested both in the intact condition and after the implantation of the total disc replacement. Sixteen key stiffness terms were identified for the comparison of the intact and total disc replacement specimens, comprising the 6 principal stiffness terms and 10 key off-axis stiffness terms. The total disc replacement specimens were significantly different to the intact specimens in 12 of these key terms including all six principal stiffness terms. The implantation of the total disc replacement resulted in a mean reduction in the principal stiffness terms of 100%, 91%, and 98% in lateral bending, flexion-extension, and axial rotation, respectively. The novel findings of this study have demonstrated that the unconstrained, low-friction total disc replacement does not replicate the stiffness of the intact specimens. It is likely that other low-friction total disc replacements would produce similar results due to stiffness being actively minimised as part of the design of low-friction devices, without the introduction of stiffening elements or mechanisms to more accurately replicate the mechanical properties of the natural intervertebral disc. This study has demonstrated, for the first time, a method for the quantitative comparative mechanical function testing of total disc replacements and provides baseline data for the development of future devices.
引用
收藏
页码:769 / 777
页数:9
相关论文
共 50 条
  • [31] Lumbar intervertebral disc replacement in Australia: An epidemiological study
    Dragan, Zac
    George, Adam R.
    Campbell, Ryan J.
    Gray, Randolph
    Sivakumar, Brahman Shankar
    Symes, Michael
    JOURNAL OF CRANIOVERTEBRAL JUNCTION AND SPINE, 2024, 15 (03): : 338 - 342
  • [32] Effect of hormone replacement therapy on intervertebral disc height
    Stevenson, T. E. J.
    Brincat, M. P.
    Pollacco, J.
    Stevenson, J. C.
    CLIMACTERIC, 2023, 26 (02) : 110 - 113
  • [33] Intervertebral disc replacement maintains cervical spine kinetics
    Puttlitz, CM
    Rousseau, MA
    Xu, Z
    Hu, S
    Tay, BKB
    Lotz, JC
    SPINE, 2004, 29 (24) : 2809 - 2814
  • [34] Engineering a biomimetic integrated scaffold for intervertebral disc replacement
    Du, Lilong
    Yang, Qiang
    Zhang, Jiamin
    Zhu, Meifeng
    Ma, Xinlong
    Zhang, Yang
    Wang, Lianyong
    Xu, Baoshan
    MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2019, 96 : 522 - 529
  • [35] Editor's preface: the science of intervertebral disc replacement
    Wilke, Hans-Joachim
    Ferguson, Stephen J.
    EUROPEAN SPINE JOURNAL, 2012, 21 : S575 - S576
  • [36] Editor’s preface: the science of intervertebral disc replacement
    Hans-Joachim Wilke
    Stephen J. Ferguson
    European Spine Journal, 2012, 21 : 575 - 576
  • [37] Biological response of the intervertebral disc to dynamic loading
    Walsh, AJL
    Lotz, JC
    JOURNAL OF BIOMECHANICS, 2004, 37 (03) : 329 - 337
  • [38] Erratum to: The effects of dynamic loading on the intervertebral disc
    Samantha C. W. Chan
    Stephen J. Ferguson
    Benjamin Gantenbein-Ritter
    European Spine Journal, 2011, 20 (11) : 1813 - 1813
  • [39] Mounted dynamic characteristics of washer type piezoelectric six-axis force sensors
    Liu, Jun
    Du, Jing-Jing
    Lü, Hua-Yi
    Guangxue Jingmi Gongcheng/Optics and Precision Engineering, 2015, 23 : 279 - 285
  • [40] Temporomandibular Joint Disc Replacement with Acellular Dermal Matrix for Irreparable Disc
    Orozco-Fernandez, Martin
    Lopez, Juan Pablo
    JOURNAL OF MAXILLOFACIAL & ORAL SURGERY, 2024,