Abstract
The cause of disc herniation is not well understood yet. It is assumed that heavy lifting and extreme postures can cause small injuries starting either in the inner anulus or from the outside close to the endplate. Such injuries are accumulated over years until its structure is weakened and finally a single loading event leads to a sudden failure of the last few intact lamellae. This paper describes a novel, custom-developed dynamic 6-DOF disc-loading simulator that allows complex loading to provoke such disc damage and herniations. The machine's axes are driven by six independent servomotors providing high loads (10 kN axial compression, 2 kN shear, 100 Nm torque) up to 5Hz. A positional accuracy test was conducted to validate the machine. Subsequently, initial experiments with lumbar ovine motion segments under complex loading were performed. After testing, the discs were examined in an ultra-high field MRI (11.7 T). A three-dimensional reconstruction was performed to visualise the internal disc lesions. Validation tests demonstrated positioning with an accuracy of ≤0.08°/≤0.026mm at 0.5Hz and ≤0.27°/≤0.048mm at 3.0Hz with amplitudes of ±17°/±2mm. Typical failure patterns and herniations could be provoked with complex asymmetrical loading protocols. Loading with axial compression, flexion, lateral bending and torsion lead in 8 specimens to 4 herniated discs, two protrusions and two delaminations. All disc failures occurred in the posterior region of the disc. This new dynamic disc-loading simulator has proven to be able to apply complex motion combinations and allows to create artificial lesions in the disc with complex loading protocols. The aim of further tests is to better understand the mechanisms by which disc failure occurs at the microstructural level under different loading conditions. Visualisation with ultra-high field MRI at different time points is a promising method to investigate the gradual development of such lesions, which may finally lead to disc failure. These kinds of experiments will help to better investigate the mechanical failure of discs to provide new insights into the initiation of intervertebral disc herniation. This device will also serve for many other applications in spine biomechanics research.
Highlights
The spinal column is an integral part of the human body allowing trunk flexibility
This paper describes a novel, custom-developed dynamic 6-degrees of freedom (DOF) discloading simulator that allows complex loading to provoke such disc damage and herniations
The new dynamic disc-loading simulator enables an arbitrary combination of all six DOF
Summary
The spine is subject to normal age related process and to certain disorders such as degenerative disc disease (DDD, accelerated aging) and disc prolapse [1]. Incidence of prolapse is highest in the lower lumbar or lumbosacral spine ([90 %) [2,3,4]. This region is subjected to high biomechanical loads, which presumably account for the development of disc prolapse [1, 5]. It is still debated whether DDD leads to or protects against disc herniation [1]. There is debate as to whether they are even interconnected [6]
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