| Literature DB >> 23777265 |
Shih-Liang Shih1, Chien-Lin Liu, Li-Ying Huang, Chang-Hung Huang, Chen-Sheng Chen.
Abstract
BACKGROUND: The Dynesys system provides stability for destabilized spines while preserving segmental motion. However, clinical studies have demonstrated that the Dynesys system does not prevent adjacent segment disease. Moreover, biomechanical studies have revealed that the stiffness of the Dynesys system is comparable to rigid fixation. Our previous studies showed that adjusting the cord pretension of the Dynesys system alleviates stress on the adjacent level during flexion. We also demonstrated that altering the stiffness of Dynesys system spacers can alleviate stress on the adjacent level during extension of the intact spine. In the present study, we hypothesized that omitting the cord preload and changing the stiffness of the Dynesys system spacers would abate stress shielding on adjacent spinal segments.Entities:
Mesh:
Year: 2013 PMID: 23777265 PMCID: PMC3706348 DOI: 10.1186/1471-2474-14-191
Source DB: PubMed Journal: BMC Musculoskelet Disord ISSN: 1471-2474 Impact factor: 2.362
Material properties of lumbar spine[20-23]
| | | | | |
| Cortical | 8-node SOLID185 | Ex=11300 | ν xy=0.484 | - |
| | | Ey=11300 | ν xz=0.203 | - |
| | | Ez=22000 | ν yz=0.203 | |
| | | Gx=3800 | | |
| | | Gy=5400 | | |
| | | Gz=5400 | | |
| Cancellous | 8-node SOLID185 | Ex=140 | ν xy=0.45 | - |
| | | Ey=140 | ν xz=0.315 | |
| | | Ez=200 | ν yz=0.315 | |
| | | Gx=48.3 | | |
| | | Gy=48.3 | | |
| | | Gz=48.3 | | |
| Posterior element | 8-nodeSOLID185 | 3500 | 0.25 | - |
| | | | | |
| Nucleus pulposus | 8-node SOLID185 | 1.66 | 0.499 | - |
| Ground Substance | 8-node SOLID185 | 5.36 | 0.45 | - |
| | d=1.12e-007 | C10=0.42 | C01=0.105 | |
| 2-node LINK10 | | | | |
| Outermost | | 550 | - | 0.76 |
| Second | | 495 | - | 0.5928 |
| Third | | 412.5 | - | 0.4712 |
| Innermost | | 357.5 | - | 0.3572 |
| 8-node SOLID185 | 24 | 0.4 | - | |
| 2-node LINK10 | | | | |
| ALL | | 7.8 | - | 24 |
| PLL | | 10 | - | 14.4 |
| TL | | 10 | - | 3.6 |
| LF | | 15 | - | 40 |
| ISL | | 10 | - | 26 |
| SSL | | 8 | - | 23 |
| CL | 7.5 | - | 30 |
C10 and C01 are the two parameters of the Mooney-Rivlin hyperelastic formation; d, material incompressibility parameter, ALL Anterior longitudinal ligament, CL Capsular ligament, ISL Interspinous ligament, LF Ligamentum flavum, PLL Posterior longitudinal ligament, SSL Supraspinous ligament, TL Transverse ligament.
Material properties of the dynesys system[20-23]
| Titanium | 8-node SOLID185 | 110000 | 0.28 |
| PCU spacer | 8-node SOLID185 | 68.4 | 0.4 |
| PET cord | 8-node SOLID185 | 1500 | 0.4 |
Figure 1The finite element model used in this study. (A). The intact spine. (B). The intact spine implanted with the Dynesys system in place between L3 and L4. (C). The spine after laminectomy and facetectomy between L3 and L4 implanted with the Dynesys system in place. (D). The Dynesys system consists of conical titanium alloy pedicle screws, hollow polycarbonate urethane (PCU) spacers and polyethylene terephthalate (PET) cords [20].
ROM, disc annulus stress and facet contact forces on the left (L) and right (R) sides of the spine durings flexion, extension, axial rotation and lateral bending moments
| | ||||||||
|---|---|---|---|---|---|---|---|---|
| 4.66 | 3.42 | 1.75 | 4.74 | 4.8 | 3.37 | 2.05 | 5.08 | |
| 4.48 | 3.03 | 1.75 | 4.74 | 5.36 | 4.7 | 2.14 | 5.1 | |
| 5.88 | 3.65 | 1.83 | 5.4 | 0.93 | 2.68 | 1.8 | 2.75 | |
| 5.81 | 3.65 | 1.78 | 5.39 | 0.89 | 2.66 | 1.95 | 2.9 | |
| 5.52 | 3.77 | 1.76 | 5.28 | 1.97 | 2.16 | 2.13 | 3.28 | |
| 5.52 | 3.7 | 1.76 | 5.19 | 1.97 | 2.47 | 2.12 | 3.43 | |
| | | | | | | | | |
| 998.45 | 741 | 332 | 1316 | 944.39 | 687 | 372 | 1229.8 | |
| 946.33 | 677.64 | 311.59 | 1318.4 | 1047.7 | 1446 | 438.63 | 1292.9 | |
| 1343 | 803.04 | 347 | 1588 | 440 | 592.36 | 522 | 793 | |
| 1323.2 | 792.27 | 337.29 | 1585.7 | 435.47 | 618.55 | 608.98 | 867.54 | |
| 1236.2 | 822.5 | 324.51 | 1531.1 | 558.48 | 579.08 | 397.79 | 780.8 | |
| 1235.9 | 804.68 | 324.22 | 1500.2 | 558.36 | 607.8 | 404.13 | 859.36 | |
| | | | | | | | ||
| 0.00 | 86.44 | 0.00 | 15.52 | 0.00 | 109.61 | 0.00 | 26.75 | |
| 0.00 | 86.44 | 117.81 | 10.29 | 0.00 | 109.61 | 110.68 | 0.00 | |
| 0.00 | 67.85 | 0.00 | 14.15 | 0.00 | 77.13 | 0.00 | 32.87 | |
| 0.00 | 67.85 | 102.47 | 10.48 | 0.00 | 77.13 | 106.24 | 0.00 | |
| 0.00 | 98.73 | 0.00 | 32.76 | 7.32 | 65.88 | 0.00 | 35.81 | |
| 0.00 | 98.73 | 124.72 | 14.77 | 7.32 | 65.92 | 123.06 | 24.97 | |
| 0.00 | 99.07 | 0.00 | 34.20 | 0.00 | 21.96 | 0.00 | 15.79 | |
| 0.00 | 99.07 | 120.79 | 17.32 | 0.00 | 21.96 | 102.52 | 17.23 | |
| 0.00 | 104.66 | 0.00 | 38.18 | 0.00 | 13.24 | 0.00 | 11.80 | |
| 0.00 | 104.66 | 112.35 | 18.34 | 0.00 | 13.24 | 114.98 | 0.00 | |
| 0.00 | 101.51 | 0.00 | 33.71 | 0.00 | 15.92 | 0.00 | 14.64 | |
| 0.00 | 101.51 | 112.41 | 17.47 | 0.00 | 15.92 | 115.14 | 0.00 | |
Intact spine, Decompressed spine.
Intact spine implanted with the Dynesys system with cord pretension.
Decompressed spine implanted with the Dynesys system with cord pretension.
Decompressed spine implanted with the Dynesys system without cord pretension.
Decompressed spine with Dynesys assembled using 0.8 times diameter spacers wihtout cord pretension.
Figure 2Disc annulus stress. Stress at L3-L4 (A) and L2-L3 (B). Values for the INT are not presented because the data were normalized to the INT with the difference divided by INT values presented as a percentage.
Figure 3Disc stress distribution at the adjacent cranial level. The greatest annulus stress occurred at the anteriosuperior edge of the disc with both lateral sides sustaining less stress. The IntDyWL model showed the greatest annulus stress.