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Original Article

Radiological and Clinical Significance of Cervical Dynamic Magnetic Resonance Imaging for Cervical Spondylotic Myelopathy

Neurospine 2024;21(2):443-454.
Published online: June 30, 2024

1Department of Neurosurgery, Yongin Severance Hospital, Yonsei University College of Medicine, Yongin, Korea

2Department of Neurosurgery, Inje University Sanggye Paik Hospital, Inje University College of Medicine, Seoul, Korea

3Department of Neurosurgery, National Health Insurance Service Ilsan Hospital, Goyang, Korea

4Department of Hospital Medicine, Yongin Severance Hospital, Yonsei University College of Medicine, Yongin, Korea

5Department of Neurosurgery, Gangnam Severance Hospital, Yonsei University School of Medicine, Seoul, Korea

6Department of Neurosurgery, Yonsei University College of Medicine, Seoul, Korea

7University of Pacific, Stockton, CA, USA

8POSTECH Biotech Center, Pohang University of Science and Technology, Pohang, Korea

Corresponding Author Yoon Ha Department of Neurosurgery, Yonsei University College of Medicine, 50-1 Yonsei-ro, Seodaemun-gu, Seoul 03722, Korea Email: hayoon@yuhs.ac
Co-corresponding Author Joongkyum Shin Department of Neurosurgery, Yonsei University College of Medicine, 50-1 Yonsei-ro, Seodaemun-gu, Seoul 03722, Korea Email: soblessed337@gmail.com
• Received: February 18, 2024   • Revised: April 19, 2024   • Accepted: April 22, 2024

Copyright © 2024 by the Korean Spinal Neurosurgery Society

This is an open access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0/) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

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Radiological and Clinical Significance of Cervical Dynamic Magnetic Resonance Imaging for Cervical Spondylotic Myelopathy
Neurospine. 2024;21(2):443-454.   Published online June 30, 2024
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Radiological and Clinical Significance of Cervical Dynamic Magnetic Resonance Imaging for Cervical Spondylotic Myelopathy
Neurospine. 2024;21(2):443-454.   Published online June 30, 2024
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Radiological and Clinical Significance of Cervical Dynamic Magnetic Resonance Imaging for Cervical Spondylotic Myelopathy
Image Image Image Image
Fig. 1. Flow chart of patient selection.
Fig. 2. Positions of the cervical spine for the dynamic magnetic resonance imaging (MRI). During cervical dynamic MRI, the patient’s neck was alternately positioned in extension and flexion using a custom-made cushion under the head and shoulders. Flexion-positioned MRI (A), neutral-positioned MRI (B), and extension-positioned MRI (C).
Fig. 3. Measurement technique of morphometric parameters on T2-weighted magnetic resonance imaging (MRI) during flexion, neutral, and extension. Flexion MRI in sagittal section (A), neutral MRI in sagittal section (B), extension MRI in sagittal section (C), flexion MRI in axial section at C4–5 (D), neutral MRI in axial section at C4–5 (E), and extension MRI in axial section at C4–5 (F). Black dashed line indicates the SC area, black solid line indicates the SC plus CSF area of compression level, and white dashed line indicates the C2–7 angle. CSF, cerebrospinal fluid; SC, spinal cord.
Fig. 4. Increase of SI grade and cervical stenosis during extension. A 53-year-old male was diagnosed with cervical spondylotic myelopathy due to a herniated cervical disc at C4–5–6. (A) Flexion-positioned magnetic resonance imaging (MRI) showed intramedullary faint SI (G1) at C4–5 and no effacement of subarachnoid space. (B) Neutral-positioned MRI showed complete obliteration of the anterior subarachnoid space (Muhle grade 2). (C) Extension-positioned MRI showed severe cord impingement at C4–5–6 (Muhle grade 3) and intense intramedullary SI (G2). (D) Flexion-positioned axial view showed cord compression, but the subarachnoid space was not obliterated. (E) On the neutral axial T2-weighted imaging (T2WI), effacement on the right anterior subarachnoid space was noted. (F) On extension-positioned axial T2WI, intense intramedullary SI (G2) was observed.
Radiological and Clinical Significance of Cervical Dynamic Magnetic Resonance Imaging for Cervical Spondylotic Myelopathy
Characteristic Value
Age (yr) 55.34 (29–79)
Sex, male:female 113:78
Preoperative clinical assessment
 JOA 11.07 ± 2.41 (5–15)
 Nurick 2.56 ± 0.98 (1–5)
2-Year postoperative clinical assessment
 JOA 14.89 ± 1.75 (9–17)
 Recovery rate (%) 85.49 ± 13.21 (40–100)
 Nurick 1.63 ± 0.87 (0–4)
Most compressed levels
 C3–4 36 (18.8)
 C4–5 50 (26.2)
 C5–6 77 (40.3)
 C6–7 28 (14.7)
Procedure
 Anterior 113 (59.16)
 Posterior 69 (36.13)
 Combined anterior-posterior 9 (4.71)
Pathology
 Disc 141 (73.8)
 Osteophyte 12 (6.3)
 OLF 9 (4.7)
 OPLL 29 (15.2)
Variable Flexion Neutral Extension p-value
Sagittal CSA at compression
 SC (mm2) 560.70 ± 90.53 534.04 ± 86.96 516.95 ± 106.20 < 0.001*
 CSF area (mm2) 349.43 ± 123.80 353.50 ± 106.61 294.53 ± 101.02 < 0.001*
 CSF reserve ratio (%) 37.63 ± 9.63 39.34 ± 8.71 35.89 ± 9.06 0.004*
Axial CSA at compression
 SC (mm2) 68.95 ± 15.18 67.60 ± 15.44 68.03 ± 15.92 0.637
 CSF area (mm2) 79.77 ± 33.89 77.33 ± 30.78 76.51 ± 35.26 0.594
 CSF reserve ratio (%) 51.55 ± 13.08 51.60 ± 13.37 50.50 ± 14.31 0.759
Sagittal diameter at compression
 SC (mm) 5.04 ± 1.29 4.70 ± 1.26 4.59 ± 1.55 0.006*
 Dural sac (mm) 6.45 ± 0.72 6.33 ± 0.69 6.61 ± 0.82 0.002*
 Cord occupation rate (%) 78.02 ± 17.31 74.36 ± 18.07 69.07 ± 20.62 < 0.001*
Axial diameter at compression
 SC (mm) 5.97 ± 1.02 5.67 ± 1.05 5.48 ± 1.49 0.015*
 Dural sac (mm) 10.31 ± 1.96 10.19 ± 1.97 10.04 ± 2.25 0.472
 Cord occupation rate (%) 59.49 ± 12.43 55.60 ± 9.61 56.64 ± 16.39 0.096
Variable Flexion Neutral Extension
SI grade
 G0 73 (38.22) 70 (36.65) 67 (35.08)
 G1 44 (23.04) 47 (24.61) 50 (26.18)
 G2 74 (38.74) 74 (38.74) 74 (38.74)
Muhle grade
 G0 8 (4.19) 0 (0) 0 (0)
 G1 76 (39.79) 90 (47.12) 36 (18.85)
 G2 71 (37.17) 64 (33.51) 68 (35.60)
 G3 36 (18.85) 37 (19.37) 87 (45.55)
SI grade G0 (n = 70) G1 (n = 47) G2 (n = 74) p-value
No. of compression lesions 3.61 ± 0.99 3.51 ± 1.09 3.36 ± 0.97 0.319
Preop JOA 12.09 ± 2.13 11.11 ± 2.32 10.09 ± 2.33 < 0.001*
Postop JOA 15.89 ± 1.02 14.64 ± 1.65 14.11 ± 1.92 < 0.001*
Recovery rate (%) 92.93 ± 6.35 83.35 ± 12.24 79.82 ± 15.26 < 0.001*
ROM on dynamic x-ray 27.68 ± 9.99 33.88 ± 15.89 43.61 ± 14.43 < 0.001*
ROM on MRI 30.34 ± 12.31 35.05 ± 15.63 45.04 ± 18.90 < 0.001*
Variable Flexion Neutral Extension
Sagittal CSA of SC 0.95 (0.94–0.96) 0.87 (0.83–0.91) 0.85 (0.81–0.89)
Sagittal CSA of CSF 0.93 (0.92–0.95) 0.91 (0.87–0.93) 0.87 (0.80–0.91)
Axial CSA of SC 0.95 (0.93–0.96) 0.90 (0.88–0.93) 0.91 (0.87–0.92)
Axial CSA of CSF 0.92 (0.89–0.94) 0.91 (0.88–0.93) 0.94 (0.92–0.95)
Sagittal diameter of SC 0.94 (0.92–0.95) 0.88 (0.84–0.91) 0.87 (0.83–0.90)
Sagittal diameter of dural sac 0.81 (0.75–0.86) 0.82 (0.75–0.86) 0.81 (0.76–0.86)
Axial diameter of SC 0.93 (0.91–0.95) 0.87 (0.83–0.90) 0.89 (0.86–0.92)
Axial diameter of dural sac 0.89 (0.86–0.92) 0.85 (0.80–0.89) 0.90 (0.87–0.93)
Table 1. Patient demographics

Values are presented as mean±standard deviation (range) or number (%).

JOA, Japanese Orthopaedic Association; OLF, ossification of ligament flavum; OPLL, ossification of the posterior longitudinal ligament.

Table 2. Radiological findings according to neck motion

Values are presented as mean±standard deviation.

CSA, cross-sectional area; SC, spinal cord; CSF, cerebrospinal fluid.

p<0.05, statistically significant differences.

Table 3. Change of signal intensity and cervical stenosis according to neck motion

Values are presented as number (%).

SI, signal intensity; G, grade.

Table 4. Radiological and clinical findings according to signal intensity

Values are presented as mean±standard deviation.

SI, signal intensity; JOA, Japanese Orthopaedic Association; ROM, range of motion; MRI, magnetic resonance imaging.

p<0.05, statistically significant differences.

Table 5. Interobserver reliability of the radiological parameters

Values are presented as intraclass confidence correlation (95% confidence interval).

CSA, cross-sectional area; SC, spinal cord; CSF, cerebrospinal fluid.