| Literature DB >> 29914519 |
Tao Wu1, Xuejiao Ren2, Yunwei Cui3, Xiaodong Cheng3, Shuo Peng1, Zhiyong Hou3, Yongtai Han4.
Abstract
BACKGROUND: To compare the stability of sacroiliac joint disruption fixed with three kinds of internal fixation using both biomechanical test and finite element analysis.Entities:
Keywords: Biomechanics; Finite element analyses; Internal fixation; Sacroiliac joint disruption
Mesh:
Year: 2018 PMID: 29914519 PMCID: PMC6006595 DOI: 10.1186/s13018-018-0858-2
Source DB: PubMed Journal: J Orthop Surg Res ISSN: 1749-799X Impact factor: 2.359
Fig. 1The structure of MIAP
Specimen information and sequence of internal fixation
| Sequence number | Age (years) | Bone mineral density ( | Sequence of fixation |
|---|---|---|---|
| 1 | 45 | 0.3 | ①-②-③ |
| 2 | 35 | 0.4 | ②-③-① |
| 3 | 51 | 0.2 | ③-①-② |
| 4 | 48 | 0.2 | ①-③-② |
| 5 | 37 | 0.5 | ②-①-③ |
① MIAP combined with one IS screw; ② two IS screws; ③ anterior plate
Fig. 2Image of the specimen after creating left sacroiliac disruption with an incision on the symphysis pubis
Fig. 3Sacroiliac disruption fixed with MIAP combined with one IS screw. a Posterior view of the specimen. b Anteroposterior radiograph of the pelvis. Sacroiliac disruption fixed with two IS screws. c Posterior view of the specimen. d Anteroposterior radiograph of the pelvis. Sacroiliac disruption fixed with an anterior plate. e, a Posterior view of the specimen. f, b Anteroposterior radiograph of the pelvis
The properties of materials used in pelvic finite element model
| Material | Young’s modulus (MPa) | Poisson’s ratio | |
|---|---|---|---|
| Cortical bone (ilium) | 17,000 | 0.3 | |
| Cortical bone (sacrum) | 6140 | 0.3 | |
| Cancellous bone (ilium) | 132 | 0.2 | |
| Cancellous bone (sacrum) | 1400 | 0.3 | |
| Symphysis pubis | 5 | 0.45 | |
| Sacroiliac posterior long ligament | 1000 | ||
| Sacroiliac posterior short ligament | 400 | ||
| Sacroiliac anterior ligament | 700 | ||
| Sacrotuberous ligament | 1500 | ||
| Sacrospinous ligament | 1400 |
Fig. 4Load-displacement scattergraph of the specimens
Displacement of the pelvis fixed with three types of internal fixation under vertical load (‾x ± s, n = 5)
| Load (N) | ① (mm) | ② (mm) | ③ (mm) | ||||
|---|---|---|---|---|---|---|---|
| ① vs ② | ① vs ③ | ② vs ③ | |||||
| 100 | 0.496 ± 0.102 | 0.6768 ± 0.130 | 1.1826 ± 0.220 | 78.209/0.000 | 0.039 | 0.000 | 0.000 |
| 200 | 0.945 ± 0.193 | 1.334 ± 0.272 | 2.002 ± 0.296 | 87.893/0.000 | 0.004 | 0.000 | 0.000 |
| 300 | 1.466 ± 0.311 | 1.956 ± 0.342 | 2.832 ± 0.366 | 203.61/0.000 | 0.000 | 0.000 | 0.000 |
| 400 | 1.865 ± 0.369 | 2.478 ± 0.392 | 3.871 ± 0.601 | 207.281/0.000 | 0.001 | 0.000 | 0.000 |
| 500 | 2.477 ± 0.321 | 3.128 ± 0.519 | 4.704 ± 0.600 | 129.958/0.000 | 0.005 | 0.000 | 0.000 |
① MIAP combined with one IS screw; ② two IS screws; ③ anterior plate
Fig. 5Distribution of von Mises stress in the intact pelvic model
Fig. 6a The stress distribution of the pelvis fixed with MIAP combined with one IS screw. b The stress distribution of the MIAP combined with one IS screw. c The stress distribution of the pelvis fixed with two IS screws. d The stress distribution of two IS screws. e The stress distribution of the pelvis fixed with anterior plate. f The stress distribution of the anterior plate