Spine biomechanics

被引:207
作者
Adams, MA [1 ]
Dolan, P [1 ]
机构
[1] Univ Bristol, Dept Anat, Bristol BS2 8EJ, Avon, England
关键词
spine; back pain; biomechanics; forces; mechanobiology; review;
D O I
10.1016/j.jbiomech.2005.03.028
中图分类号
Q6 [生物物理学];
学科分类号
071011 [生物物理学];
摘要
Current trends in spine research are reviewed in order to suggest future opportunities for biomechanics. Recent studies show that psychosocial factors influence back pain behaviour but are not important causes of pain itself. Severe back pain most often arises from intervertebral discs, apophyseal joints and sacroiliac joints, and physical disruption of these structures is strongly but variably linked to pain. Typical forms of structural disruption can be reproduced by severe mechanical loading in-vitro, with genetic and age-related weakening sometimes leading to injury under moderate loading. Biomechanics can be used to quantify spinal loading and movements, to analyse load distributions and injury mechanisms, and to develop therapeutic interventions. The authors suggest that techniques for quantifying spinal loading should be capable of measurement "in the field" so that they can be used in epidemiological surveys and ergonomic interventions. Great accuracy is not required for this task, because injury risk depends on tissue weakness as much as peak loading. Biomechanical tissue testing and finite-element modelling should complement each other, with experiments establishing proof of concept, and models supplying detail and optimising designs. Suggested priority areas for future research include: understanding interactions between intervertebral discs and adjacent vertebrae; developing prosthetic and tissue-engineered discs; and quantifying spinal function during rehabilitation. "Mechanobiology" has perhaps the greatest future potential, because spinal degeneration and heating are both mediated by the activity of cells which are acutely sensitive to their local mechanical environment. Precise characterisation and manipulation of this environment will be a major challenge for spine biomechanics. (c) 2005 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1972 / 1983
页数:12
相关论文
共 103 条
[1]
BIOMECHANICAL EVALUATION OF SPINAL FIXATION DEVICES .3. STABILITY PROVIDED BY 6 SPINAL FIXATION DEVICES AND INTERBODY BONE-GRAFT [J].
ABUMI, K ;
PANJABI, MM ;
DURANCEAU, J .
SPINE, 1989, 14 (11) :1249-1255
[2]
A TECHNIQUE FOR QUANTIFYING THE BENDING MOMENT ACTING ON THE LUMBAR SPINE INVIVO [J].
ADAMS, MA ;
DOLAN, P .
JOURNAL OF BIOMECHANICS, 1991, 24 (02) :117-126
[3]
Mechanical initiation of intervertebral disc degeneration [J].
Adams, MA ;
Freeman, BJC ;
Morrison, HP ;
Nelson, IW ;
Dolan, P .
SPINE, 2000, 25 (13) :1625-1636
[4]
'Stress' distributions inside intervertebral discs - The effects of age and degeneration [J].
Adams, MA ;
McNally, DS ;
Dolan, P .
JOURNAL OF BONE AND JOINT SURGERY-BRITISH VOLUME, 1996, 78B (06) :965-972
[5]
Sustained loading generates stress concentrations in lumbar intervertebral discs [J].
Adams, MA ;
McMillan, DW ;
Green, TP ;
Dolan, P .
SPINE, 1996, 21 (04) :434-438
[6]
MECHANICAL TESTING OF THE SPINE - AN APPRAISAL OF METHODOLOGY, RESULTS, AND CONCLUSIONS [J].
ADAMS, MA .
SPINE, 1995, 20 (19) :2151-2156
[7]
Effects of backward bending on lumbar intervertebral discs - Relevance to physical therapy treatments for low back pain [J].
Adams, MA ;
May, S ;
Freeman, BJC ;
Morrison, HP ;
Dolan, P .
SPINE, 2000, 25 (04) :431-437
[8]
The potential and limitations of a cell-seeded collagen/hyaluronan scaffold to engineer an intervertebral disc-like matrix [J].
Alini, M ;
Li, W ;
Markovic, P ;
Aebi, M ;
Spiro, RC ;
Roughley, PJ .
SPINE, 2003, 28 (05) :446-453
[9]
[Anonymous], 2002, BIOMECHANICS BACK PA
[10]
The human lumbar intervertebral disc - Evidence for changes in the biosynthesis and denaturation of the extracellular matrix with growth, maturation, ageing, and degeneration [J].
Antoniou, J ;
Steffen, T ;
Nelson, F ;
Winterbottom, N ;
Hollander, AP ;
Poole, RA ;
Aebi, M ;
Alini, M .
JOURNAL OF CLINICAL INVESTIGATION, 1996, 98 (04) :996-1003