Secondary Dislocations in Type B and C Injuries of the Subaxial Cervical Spine: Risk Factors and Treatment
Abstract
:1. Introduction
2. Materials and Methods
2.1. Inclusion and Exclusion Criteria
2.2. Treatment
2.3. Data Extraction and Variables
2.4. Endpoint and Statistical Analysis
3. Results
3.1. Patient Characteristics
3.2. Primary Stabilization and Secondary Dislocations
3.3. Potential Risk Factors for Secondary Dislocation
3.4. Treatment of Secondary Dislocations
4. Discussion
4.1. Incidence of Secondary Dislocations
4.2. Risk Factors and Patient Characteristics
4.3. Injury Morphology
4.4. Treatment
4.5. Limitations
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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AO Spine Modifiers | ||
M1 | Posterior Capsuloligamentous Complex injury without complete disruption | |
M2 | Critical disc herniation | |
M3 | Stiffening/metabolic bone disease (i.e., DISH, AS, OPLL, OLF) | |
M4 | Vertebral artery abnormality | |
AO Spine Facet Injuries | Stability | |
F1 | Nondisplaced facet fracture with fragment < 1 cm in height, <40% of lateral mass | Stable |
F2 | Facet fracture with potential for instability with fragment > 1 cm, >40% lateral mass, or displaced | Potentially unstable |
F3 | Floating lateral mass | Unstable |
F4 | Pathologic subluxation or perched/dislocated facet |
Demographics | ||
Age | ||
≤39 | 49 | 17.8% |
40–59 | 75 | 27.3% |
60–79 | 111 | 40.4% |
≥80 | 40 | 14.5% |
Sex | ||
Female | 73 | 26.5% |
Male | 202 | 73.5% |
Preexisting stiffening spine pathology | ||
No | 240 | 87.3% |
Yes | 35 | 12.7% |
Injury morphology | ||
AO Spine Primary | ||
B2 | 39 | 14.2% |
B3 | 96 | 34.9% |
C | 140 | 50.9% |
Multilevel Injury | ||
No | 257 | 93.5% |
Yes | 18 | 6.5% |
Facet Injury | ||
none | 94 | 34.2% |
F1 | 26 | 9.5% |
F2 | 42 | 15.3% |
F3 | 14 | 5.1% |
F4 | 99 | 36.0% |
Modifier | ||
none | 142 | 51.6% |
1 | 55 | 20.0% |
2 | 35 | 12.7% |
3 | 35 | 12.7% |
4 | 8 | 2.9% |
Injury Type | Primary Stabilization | Patients (n) | Secondary Dislocations (n) | Secondary Dislocation Rate | Secondary Dislocation Rate per Injury Type |
---|---|---|---|---|---|
B2 | anterior | 16 | 2 | 12.5% | 5.1% |
posterior | 11 | 0 | 0.0% | ||
combined | 12 | 0 | 0.0% | ||
B3 | anterior | 64 | 2 | 3.1% | 3.1% |
posterior | 12 | 0 | 0.0% | ||
combined | 20 | 1 | 5.0% | ||
C | anterior | 45 | 6 | 13.3% | 4.3% |
posterior | 20 | 0 | 0.0% | ||
combined | 75 | 0 | 0.0% | ||
total | anterior | 125 | 10 | 8.0% | 4.0% |
posterior | 43 | 0 | 0.0% | ||
combined | 107 | 1 | 0.9% |
Potential Risk Factors | No Secondary Dislocation (n = 264) | Secondary Dislocation (n = 11) | p |
---|---|---|---|
Patient Characteristics | |||
Age [years, mean (SD)] | 58.7 (20.0) | 75.3 (7.6) | 0.001 1 |
Sex [% female] | 25.8 | 45.5 | 0.134 2 |
Preexisting spine pathology * [%] | 12.1 | 27.3 | 0.121 2 |
Injury Morphology | |||
AO Spine Injury Type [%] | 0.696 3 | ||
B2 | 14.0 | 18.2 | |
B3 | 35.2 | 27.3 | |
C | 50.8 | 54.5 | |
Multilevel Primary Injury [%] | 6.8 | 0.0 | 0.999 2 |
Any Modifier [%] | 48.5 | 45.5 | 0.999 2 |
M1 | 20.5 | 9.1 | 0.699 2 |
M2 | 12.9 | 9.1 | 0.999 2 |
(Potentially) unstable Facet Injury [%] | 54.9 | 90.9 | 0.020 2 |
Treatment | |||
Primary stabilization [%] | 0.010 3 | ||
anterior | 43.6 | 90.9 | |
posterior | 16.3 | 0.0 | |
combined | 40.2 | 9.1 | |
Cervical collar postoperative ** [%] | 92.0 | 100.0 | 0.999 2 |
Potential Risk Factors | No Secondary Dislocation (n = 115) | Secondary Dislocation (n = 10) | p |
---|---|---|---|
Patient Characteristics | |||
Age [years, mean (SD)] | 55.9 (20.0) | 71.1 (7.9) | 0.002 1 |
Sex [% female] | 4.3 | 50.0 | 0.088 2 |
Preexisting spine pathology * [%] | 3.5 | 20.0 | 0.073 2 |
Injury Morphology | |||
AO Spine Injury Type [%] | 0.096 3 | ||
B2 | 12.2 | 20.0 | |
B3 | 53.9 | 20.0 | |
C | 33.9 | 60.0 | |
Multilevel Primary Injury [%] | 7.8 | 0.0 | 0.999 2 |
Any Modifier [%] | 52.2 | 40.0 | 0.524 2 |
M1 | 31.3 | 10.0 | 0.279 2 |
M2 | 14.8 | 10.0 | 0.999 2 |
(Potentially) unstable Facet Injury [%] | 40.0 | 90.0 | 0.005 2 |
Treatment | |||
Bone grafting [%] | 53.0 | 80.0 | 0.183 2 |
Cervical collar postoperative ** [%] | 94.8 | 100.0 | 0.999 2 |
No | Sex | Age | Level | Injury Type | Primary Treatment | Therapy of Secondary Dislocation |
---|---|---|---|---|---|---|
1 | f | 91 | C6/7 | B2 | ACDF C6/7 with plate and iliac crest graft | Posterior instrumentation C5/6/7/Th1 |
2 | f | 74 | C5/6 | B2 | ACDF C5/6 with plate and iliac crest graft | Removal of plate and ACDF C5/6/7 with plate |
3 | m | 78 | C6/7 | B3 | Posterior instrumentation C3/4 to C6/7 andAnterior fixation C5 to C7 with plate | Posterior instrumentation C3/4/5/6/7Anterior fixation C5 to C7 with plate |
4 | m | 82 | C5/6 | B3 | ACDF C5/6 with plate and iliac crest graft | Posterior instrumentation C3/4/5/6/7 and ACDF C4/5/6/7 with plate and intervertebral cages |
5 | m | 66 | C6/7 | B3 | ACDF C5/6/7 with plate and iliac crest grafts | Halo fixator |
6 | f | 80 | C6/7 | C | ACDF C6/7 with plate and allogenous bone graft | Posterior instrumentation C4/5 to Th1/2 |
7 | f | 70 | C6/7 | C | ACDF C6/7 with plate and iliac crest graft | Posterior instrumentation C3/4/5 to Th1/2 |
8 | m | 68 | C6/7 | C | ACDF C6/7 with plate and iliac crest graft | Posterior instrumentation C6/7/Th1/2 |
9 | f | 74 | C6/7 | C | ACDF C5/6/7 with plate and intervertebral cages | Posterior instrumentation C5/6/7/Th1 |
10 | m | 79 | C6/7 | C | ACDF C6/7 with plate and iliac crest graft | Posterior instrumentation recommended; patient refused |
11 | f | 67 | C5/6 | C | ACDF C5/6 with plate and intervertebral cage | Posterior instrumentation C4/5/6/7 |
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Raisch, P.; Pflästerer, J.; Kreinest, M.; Vetter, S.Y.; Grützner, P.A.; Jung, M.K. Secondary Dislocations in Type B and C Injuries of the Subaxial Cervical Spine: Risk Factors and Treatment. J. Clin. Med. 2024, 13, 700. https://doi.org/10.3390/jcm13030700
Raisch P, Pflästerer J, Kreinest M, Vetter SY, Grützner PA, Jung MK. Secondary Dislocations in Type B and C Injuries of the Subaxial Cervical Spine: Risk Factors and Treatment. Journal of Clinical Medicine. 2024; 13(3):700. https://doi.org/10.3390/jcm13030700
Chicago/Turabian StyleRaisch, Philipp, Jan Pflästerer, Michael Kreinest, Sven Y. Vetter, Paul A. Grützner, and Matthias K. Jung. 2024. "Secondary Dislocations in Type B and C Injuries of the Subaxial Cervical Spine: Risk Factors and Treatment" Journal of Clinical Medicine 13, no. 3: 700. https://doi.org/10.3390/jcm13030700
APA StyleRaisch, P., Pflästerer, J., Kreinest, M., Vetter, S. Y., Grützner, P. A., & Jung, M. K. (2024). Secondary Dislocations in Type B and C Injuries of the Subaxial Cervical Spine: Risk Factors and Treatment. Journal of Clinical Medicine, 13(3), 700. https://doi.org/10.3390/jcm13030700