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Upper cervical trauma in motor vehicle collisions.

Motor vehicle collisions can cause a variety of injuries in pedestrians and vehicle occupants. Fatal and nonfatal trauma to the upper cervical spine, that is, atlanto-occipital junction, atlas and axis, can be part of this spectrum. Certain distinctive injuries (for example, "hangman's fracture") which occur result from the unique anatomic structure of this area and the various disruptive forces such as extension, distraction (tension), compression (axial loading), shear, and inertia generated during collision. Correlation of autopsy findings or radiological information of these cervical injuries or both with scene investigation can be informative not only in the determination of morbidity and mortality, but also in the assessment of injury mechanisms and improvements in occupant protection.

Accidents, Traffic↗

[Diagnosis of hyper- and hypomotility of the upper cervical spine using functional computerized tomography].

At present, there are few methods that are of any assistance in evaluating the ligaments of the upper cervical spine. It is obvious that a lesion of these ligaments could result in instability of the cranial cervical junction. Nine healthy adults and 45 patients with suspected rotatory instability of the upper cervical spine after trauma were examined using functional CT-scans. After CT scans of the upper cervical spine had been obtained with the patient in a neutral position, the head was passively rotated to the left and right and held in these positions by adhesive tape. CT scans were performed for the left and right rotation. The range of axial rotation was measured in relation to the neutral position at the level of the occiput, atlas and axis using identical bony landmarks. A mean rotation of 4.2 degrees to the right and 3.8 degrees to the left was measured at the occiput/atlas level. The mean difference between left and right rotation in individual patients was 2 degrees. The mean rotation of C1-2 was 41.8 degrees to the right and 44.3 degrees to the left. The mean difference between left and right rotation was 2.8 degrees. A 98% confidence interval for allocating a pathological case to the distribution of healthy adults was defined. According to this rule, occiput/atlas rotation of 8 degrees or more, C1-2 rotation of 56 degrees or more, a left/right OCC/C1 difference of 5 degrees or more and a left/right C1-2 difference of 8 degrees or more were considered to be pathological.(ABSTRACT TRUNCATED AT 250 WORDS)

Atlanto-Axial Joint↗

[Traumatic and posttraumatic lesions of the cranio-vertebral junction (author's transl)].

Trauma of the cranio-vertebral junction does not only cause osseous and ligamentous injuries but also nervous and vascular damage. The peculiar structure of these joints and trauma by hyperextension as well as forced bending of the spinal cord provoke distorsion, dislocations and fractures of atlas and axis as well as occipital condyles. A radiographic examination of these lesions must be minute and tomography and functional tests employed. Post-traumatic, neurologic and vascular complications are often the cause for acute and chronic bulbo-medullary alterations.

Axis, Cervical Vertebra↗

[Traumatic atlanto-axial dislocation. (About two cases with late clinical manifestations) (author's transl)].

Two cases of atlanto axial dislocation with late neurological manifestations are reported and the very few cases of the literature are reviewed. The clinical signs are non specific. Excellent lateral tomography must demonstrate the abnormal space between atlas and axis. Surgical treatment includes bone fusion after reduction of the dislocation by cautious skull-traction. The results are excellent if the operation is performed before the onset of severe neurological deficits.

Adult↗

Unusual finding of the craniocervical junction.

The authors report a rare anomaly of the upper cervical spine. After an automobile accident, an 8-year-old child underwent CT of the head. Imaging showed a bony anomaly of the neck that was further imaged with thin cuts through the atlas and axis. This demonstrated an unfused anterior arch of the atlas and fusion of the odontoid process to the anterior arch of the atlas. Neurologically, the child is normal with no decreased range of motion about the cervical spine. After a review of the literature, this seems to be only the sixth reported case.

Cervical Vertebrae↗

Developmental abnormalities of the cervical spine below the axis.

The majority of cervical spine anomalies of clinical significance occur in the occipital, atlas, and axis areas. Below the axis, changes may occur as local solitary anomalies simulating significant disease, or in the form of more widespread segmentation and ossification anomalies categorized as the Klippel-Feil syndrome.

Cervical Vertebrae↗

[Surgical anatomy of transoral atlantoaxial reduction plate internal fixation].

OBJECTIVE: To provide anatomical data for transoral atlantoaxial reduction plate internal fixation. METHOD: Microsurgical dissecting was performed on 10 fresh craniocervical specimens layer by layer according to transoral approach. Stratification of posterior pharyngeal wall, course of vertebral artery, adjacent relationships of atlas and axis and correlative anatomical parameters of internal fixation to atlantoaxial joint were observed. RESULT: (1) Posterior pharyngeal wall consisted of 2 layers and 2 interspace: mucosa, anterior fascia of vertebrae, posterior interspace of pharynx and anterior interspace of vertebrae. (2) The range from anterior rim of foramen magnum to C3 could be exposed by this approach. (3) The distance between the vertebral artery at atlas and midline was (25.2 +/- 2.3) mm and that between the vertebral artery at axis and midline was (18.4 +/- 2.6) mm. (4) The width of atlas and that of axis could be exposed respectively to (39.4 +/- 2.2) mm and (39.0 +/- 2.1) mm. The distance (a) between 2 atlas screw inserting points (center of anterior aspect of C-1 lateral mass) was (31.4 +/- 3.3) mm. The vertical distance (b) between the connecting line of 2 atlas screw inserting points and that of 2 axis screw inserting points (at the central part of the vertebrae which was 3 - 4 mm lateral to the midline of C-2 vertebrae) was (18.7 +/- 2.7) mm. The odds of a/b was 1.5 approximately 1.7. CONCLUSIONS: Anterior atlantoaxial plate internal fixation through transoral approach is suitable and feasible. The design of the plate should be based on the above data.

Atlanto-Occipital Joint↗

Applied anatomy of transoral atlantoaxial reduction plate internal fixation.

STUDY DESIGN: A C1-C2 operation by the transoral approach was simulated to study the anatomic stratification, various structures, and adjacent relationships. The anatomic parameters in relation to transoral atlantoaxial reduction plate (TARP) internal fixation were measured. OBJECTIVES: To study relevant anatomic features of the structures involved in TARP internal fixation through transoral approach for treating irreducible atlantoaxial dislocation, so as to provide anatomic basis for the clinical application of TARP. SUMMARY AND BACKGROUND DATA: Irreducible anterior atlantoaxial dislocation (IAAD) with ventral spinal cord compression is difficult for surgical correction. Despite previous description of direct plate internal fixations through the transoral approach, the problem has not been fully resolved: the Harms' plate lacked a locking mechanism while the other plates unable to achieve immediate reduction of the atlantoaxial joint. We therefore designed the TARP system with which the decompression, reduction, internal fixation, and fusion procedures could be completed in the same transoral approach. The anatomic structures and stratification involved in the transoral approach, which were seldom addressed in previous anatomic studies, need to be clarified for internal fixation with TARP system. METHODS: Twenty fresh craniocervical specimens were microsurgically dissected layer by layer according to a transoral approach. Stratification of the posterior pharyngeal wall, course of the vertebral artery, anatomic relationships of the adjacent structures of the atlas and axis, and closely relevant anatomic parameters for TARP internal fixation were measured. RESULTS: The posterior pharyngeal wall consisted of two layers and two interspaces: the mucosa, prevertebral fascia, retropharyngeal space, and prevertebral space. The range from the anterior edge of the foramen magnum to C3 could be exposed by this approach. The thickness of the posterior pharyngeal wall was 3.6 +/- 0.3 mm (range, 2.9-4.3 mm) at the anterior tubercle of C1, 6.1 +/- 0.4 mm (range, 5.2-7.1 mm) at lateral mass of C1 and 5.5 +/- 0.4 (range, 4.3-6.5 mm) at the central part of C2, respectively. The distance from the incisor tooth to the anterior tubercle of C1, C1 screw entry point, and C2screw entry point was 82.5 +/- 7.8 mm (range, 71.4-96.2 mm), 90.1 +/- 3.8 mm (range, 82.2-96.3 mm), and 89.0 +/- 4.1 mm (range, 81.3-95.3 mm), respectively. The distance between the vertebral artery at atlas and the midline was 25.2 +/- 2.3 mm (range, 20.4-29.7 mm) and that between the vertebral artery at the axis and the midline was 18.4 +/- 2.6 mm (range, 13.1-23.0 mm). The allowed width of the atlas and axis for exposure was 39.4 +/- 2.2 mm (range, 36.2-42.7 mm) and 39.0 +/- 2.1 mm (range, 35.8-42.3 mm), respectively. The distance (a) between the two atlas screw insertion points (center of anterior aspect of C1 lateral mass) was 31.4 +/- 3.3 mm (range, 25.4-36.6 mm). The vertical distance (b) between the line connecting the two C1 screw entry points and that connecting the two C2 screw entry points (at the central part of the vertebrae, namely, 3 to 4 mm lateral to the midline of C2 vertebrae) was 21.3 +/- 2.7 mm (range, 19.4-24.3 mm), with an a/b ratio of 1.3 to 1.5. The screws of TARP had a lateral tilt of 12.2 degrees +/- 0.4 degrees (range, 10.2 degrees -14.6 degrees ) at C1 and a medial tilt of 7.3 degrees +/- 0.3 degrees (range, 5.1 degrees -9.4 degrees ) at C2 relative to the coronal plane. CONCLUSION: An atlantoaxial surgery through transoral approach is safe and feasible. This approach is suitable for an anterior TARP internal fixation, and the design of the internal fixation system should be based on the above anatomic data.

Atlanto-Axial Joint↗

The anatomical study of transoral atlantoaxial reduction plate internal fixation.

OBJECTIVE: To study relevant anatomical features of the structures involved in transoral atlanto-axial reduction plate (TARP) internal fixation through transoral approach for treating irreducible atlanto-axial dislocation and providing anatomical basis for the clinical application of TARP. METHODS: Ten fresh craniocervical specimens were microsurgically dissected layer by layer through transoral approach. The stratification of the posterior pharyngeal wall, the course of the vertebral artery, anatomical relationships of the adjacent structures of the atlas and axis, and the closely relevant anatomical parameters for TARP internal fixation were measured. RESULTS: The posterior pharyngeal wall consisted of two layers and two interspaces: the mucosa, prevertebral fascia, retropharyngeal space, and prevertebral space. The range from the anterior edge of the foramen magnum to C(3) could be exposed by this approach. The thickness of the posterior pharyngeal wall was (3.6+/-0.3) mm (ranging 2.9-4.3 mm) at the anterior tubercle of C1, (6.1+/-0.4) mm (ranging 5.2-7.1 mm) at the lateral mass of C(1) and (5.5+/-0.4) mm (ranging 4.3-6.5 mm) at the central part of C(2), respectively. The distance from the incisor tooth to the anterior tubercle of C(1), C(1) screw entry point, and C(2)screw entry point was (82.5+/-7.8) mm (ranging 71.4-96.2 mm), (90.1+/-3.8) mm (ranging 82.2-96.3 mm), and (89.0+/-4.1) mm (ranging 81.3-95.3 mm), respectively. The distance between the vertebral artery at the atlas and the midline was (25.2+/- 2.3) mm (ranging 20.4-29.7 mm) and that between the vertebral artery at the axis and the midline was (18.4+/- 2.6) mm (ranging 13.1-23.0 mm). The allowed width of the atlas and axis for exposure was (39.4+/-2.2) mm (ranging 36.2-42.7 mm) and (39.0+/-2.1) mm (ranging 35.8-42.3 mm), respectively. The distance (a) between the two atlas screw insertion points (center of anterior aspect of C(1) lateral mass) was (31.4+/-3.3) mm (ranging 25.4-36.6 mm). The vertical distance (b) between the line connecting the two C(1) screw entry points and that connecting the two C(2) screw entry points (at the central part of the vertebrae, namely 3-4 mm lateral to the midline of C(2) vertebrae) was (21.3+/-2.7) mm (ranging 19.4-24.3 mm), with an a/b ratio of 1.3-1.5. The screws of TARP had a lateral tilt of 12.2 degrees+/-0.4 degrees(ranging 10.2 degrees-14.6 degrees) at C(1) and a medial tilt of 7.3 degrees+/-0.3 degrees (ranging 5.1 degrees-9.4 degrees) at C(2) relative to the coronal plane. CONCLUSIONS: An atlanto-axial surgery through transoral approach is safe and feasible. This approach is suitable for an anterior TARP internal fixation, and the design of the internal fixation system should be based on the above anatomical data.

Atlanto-Axial Joint↗

Axial loading with hyperflexion injury to the atlas resulting in crushed lateral masses.

A 40-year-old man was involved in an ATV accident, in which he landed on the top of his head. There was no neurological deficit. A plain radiograph showed prevertebral soft tissue swelling at the atlas and axis level. Computed tomography (CT) demonstrated vertical fractures of the anterior aspects of both lateral masses of the atlas, extending to the junction of the lateral mass with the anterior arch bilaterally. There was no lateral offset of the lateral masses. The mechanism of injury is believed to be axial loading along with hyperflexion.

Accidents↗

Effect of C1-C2 rotation on canal size.

An anthropometric study of the atlas and axis was undertaken to determine spinal canal diameters, the degree of narrowing with rotation, and odontoid tilt. The mean sagittal diameter of the atlas was 30.1 mm and the mean coronal diameter was 28.8 mm. The mean sagittal diameter of the axis was 19.0 mm and the mean coronal diameter was 22.8 mm. Approximately 64 degrees of rotation occurred at the atlantoaxial complex before sufficient narrowing caused spinal cord compression in the average specimen. An average of 63 degrees of rotation was required to cause facet dislocation. Most specimens examined had a posterior odontoid tilt up to 45 degrees and a facet angle between 1 degree and 29 degrees. Bilateral facet dislocation occurred at 63 degrees. Spinal canal narrowing to 1 cm occurred at 64 degrees. This narrowing would probably not damage the cord, which averages 1 cm in diameter; however, if the rotary motion of C1 and C2 progressed, cord damage could occur. Facet angles and posterior odontoid tilts that are not within the normal range indicate pathological changes.

Anthropometry↗

Atlantoaxial malformation in a half-Arabian colt.

A 1-year-old half-Arabian colt was referred for evaluation of a cranial cervical abnormality. Physical examination revealed the left wing of the atlas to be more ventral than the right wing. A head tilt, with the pole deviated to the left, was present because of the malpositioned atlas. Neurologic examination identified symmetrical weakness, ataxia, and proprioceptive deficits in all four limbs. Radiographs of the cranial cervical region revealed fusion of the atlas and axis, and deviation of the atlantoaxial joint to the left of the median plane. Euthanasia was elected. Necropsy confirmed the radiographic findings. The atlas was rotated 20 degrees counterclockwise when viewed from the caudal aspect. Multifocal myelomalacia was present in the first and second cervical spinal cord segments. The malformation was believed to be due to a degenerative process or abnormal embryological development.

Animals↗

Morphology and embryological interpretation of a congenital occipito-atlanto-axial malformation in a dog.

A clinical, radiological, and morphological study of a congenital occipito-atlanto-axial malformation in a 13-week-old male Saint Bernard dog that became suddenly tetraplegic at 8 weeks is described. The dog was recumbent, had generalized muscle atrophy, but was alert and responsive. Pain was elicited when the head-neck junction and the cervical vertebrae were palpated, and a bony abnormality was palpated at the occiput and atlas. Clinical signs of upper motor neuron and general proprioceptive deficits in all four limbs were compatible with a focal lesion in the cervical spinal cord. Plain radiographs of the head and neck revealed malformation of the occipital bones, atlas, and axis, unilateral atlanto-occipital fusion, and atlanto-axial subluxation. At necropsy the right half of the atlantal neural arch was fused to the right exoccipital bone. On the axis, the dens was small, malformed, and deviated to the left; the transverse processes were enlarged; and the spinous process was small with a cleft caudally. The spinal cord was severely compressed at the level of the atlanto-axial articulation, and histological examination revealed extensive loss of neuronal cell bodies, axons, myelin, and the central canal. Reactive astrogliosis was also extensive. After a discussion of normal and abnormal development of the vertebral column and its joints, it was concluded that a failure of normal joint development at about 30 days of gestation in the dog could lead to congenital occipito-atlanto-axial malformation.

Animals↗