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NASS/Neurospine Endoscopic Spine Surgery Special Issue

Uniportal, Transforaminal Endoscopic Thoracic Discectomy: Review and Technical Note

Neurospine 2023;20(1):19-27.
Published online: March 31, 2023

Department of Orthopaedic Surgery, The Johns Hopkins Hospital, Baltimore, MD, USA

Corresponding Author Sang Hun Lee The Johns Hopkins University, 601 North Caroline Street, Suite 5250, Baltimore, MD 21287, USA Email: slee439@jhmi.edu
• Received: January 17, 2023   • Revised: February 27, 2023   • Accepted: February 28, 2023

Copyright © 2023 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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Citations

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    Asian Spine Journal.2026;[Epub]     CrossRef
  • Unilateral Biportal Endoscopic Transforaminal Approach for Chronic Central Thoracic Disc Herniation: A Video Case Report and Surgical Technique Description
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    Scientific Reports.2025;[Epub]     CrossRef
  • Transforaminal Endoscopic Thoracic Discectomy Is More Cost-Effective Than Microdiscectomy for Symptomatic Disc Herniations
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    Neurospine.2025; 22(1): 118.     CrossRef
  • History of endoscopic spine surgery: where did it all begin? Development of indications and techniques
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    The Spine Journal.2025;[Epub]     CrossRef
  • Complications of Endoscopic Thoracic Spine Surgery: Overview and Complication Avoidance
    Man-Kyu Park, Jeong-Yoon Park, Sang-Kyu Son
    World Neurosurgery.2023; 179: 127.     CrossRef
  • Future of Endoscopic Spine Surgery: Insights from Cutting-Edge Technology in the Industrial Field
    Woon-Tak Yuh, You-Sang Lee, Il Choi
    Bioengineering.2023; 10(12): 1363.     CrossRef

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Uniportal, Transforaminal Endoscopic Thoracic Discectomy: Review and Technical Note
Neurospine. 2023;20(1):19-27.   Published online March 31, 2023
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Uniportal, Transforaminal Endoscopic Thoracic Discectomy: Review and Technical Note
Neurospine. 2023;20(1):19-27.   Published online March 31, 2023
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Uniportal, Transforaminal Endoscopic Thoracic Discectomy: Review and Technical Note
Image Image Image Image Image Image Image
Fig. 1. A 72-year-old female with thoracic myelopathy. (A, B) Preoperative magnetic resonance imaging show right paracentral disc extrusion with spinal cord compression (the circle and arrow) with intramedullary signal changes. (C, D) Postoperative images show improved spinal cord signal and space. The patient had significant improvement of myelopathy after surgery.
Fig. 2. A 36-year-old female with thoracic myelopathy. The preoperative magnetic resonance imaging (MRI) (A) and computed tomography (B) show severe spinal cord compression and intramedullary signal changes at T8/9 with calcific disc herniation. Because of the adhesion between the dura, the calcified disc was floated without total removal (C) as seen on the MRI performed a few days postoperatively, but the patient had significant improvement after surgery and did not require additional surgery (D). SEP, superior end plate; LEP, lower end plate.
Fig. 3. Axial magnetic resonance image demonstrates the location of portal (the entry of a discography needle) and access angle. The entry is located at around 5–8 cm from the midline, and the access angle is around 45° because of the rib cage.
Fig. 4. The initial discography needle and guide wide should touch the posterolateral corner of the intervertebral disc (A, B) on fluoroscopic images. (C, D) The obturator and working cannula is touching lateral aspect of the facet joint.
Fig. 5. Computed tomography (CT) images demonstrate anatomical characteristics of the thoracic spine. (A) T10/11, T11/12 disc space is not covered by the corresponding rib heads (red arrows), but at the levels above T10, the disc space is partially covered by the rib heads (arrow head), drilling of the superior aspect of the rib head maybe needed to access the disc space, especially toward the central located disc fragment. Since pedicles of thoracic spine have a caudad angle, the upper part of the pedicle usually blocks access to the disc space (the dotted lines). Drilling of the upper pedicle-superior end plate junction provides easier access to the disc space. (B) Oblique view of a 3-dimensional CT images of the foramen. To expose the intervertebral foramen of thoracic spine, lateral facetectomy will be necessary, drilling of up to 50% of the joint surface, superior pediculectomy to the superior end plate, and superior aspect of the rib head as needed (red area). (C) An axial CT images shows lateral facetectomy and the superior end plate resection with an endoscopic burr (the red circle).
Fig. 6. Intraoperative pictures of sequential steps showing exposure of a right side T9/10 intervertebral foramen and intervertebral disc space. (A) After soft tissue removal, lateral aspect of the inferior articular process (IAP) of the cranial vertebra was drilled. (B) After the IAP resection, the superior articular process (SAP) of the inferior vertebra was drilled to open the foramen. (C) Superior aspect of the lower pedicle was drilled to expose the disc space. (D) After lateral facetectomy and drilling of the superior pedicle, the upper (arrow heads) and lower end plate (arrows), the disc space was exposed.
Fig. 7. Intraoperative pictures of the decompression. (A) After posterolateral discectomy, the lateral border of dura was exposed. (B) A radiofrequency probe or a dissector can be placed between the ventral dura and posterior annulus to confirm the plane and check for any adhesion. (C, D) After central discectomy, the pulsating ventral dura and epidural fat are visible without any compression.
Uniportal, Transforaminal Endoscopic Thoracic Discectomy: Review and Technical Note
Study Indication No. of patients Clinical outcomes* Complications (n)
Choi et al., [4] 2010 Soft thoracic disc herniation 14 VAS back 6.5 to 3 Not reported
VAS leg 5.8 to 2.5
ODI 58.1 to 24.5
Follow-up 60.2 months
Bae et al., [5] 2020 Soft thoracic disc herniation 92 VAS 7.6 to 1.6 Transient motor weakness (1), parasthesias (3), symptomatic recurrent herniations (2), reoperation (1)
ODI 68.2 to 13.2
MacNab excellent/good outcomes 90.2%
Follow-up time 38.4 months
Guo et al., [13] 2019 Lower thoracic stenosis 6 JOA score 4.4 to 6.6 at 1 year Not reported
VAS back 7.8 yo 1.9
VAS leg 8.7 to 0.3
Follow-up time 12.6 months
Bae et al., [7] 2022 Thoracic disc herniation 39 VAS 7.5 to 2.5 Incomplete decompression requiring revision (1)
ODI 47.6 to 13.7
MacNab excellent/good outcomes 89.7%
Follow-up time 11.2 months
Bae et al., [16] 2019 Upper thoracic disc herniation (T2–6) 14 VAS 7.3 to 2.3 Not reported
ODI 53.5 to 16.9
MacNab excellent/good outcomes (86%)
Follow-up 43.4 months
Houra et al., [18] 2020 Thoracic disc herniations (including 10 calcified) 16 VAS 8 to 1 Not reported
ODI 59 to 13
Follow-up 5 years
Gao et al., [6] 2021 Thoracic disc herniations (including 9 calcified) 11 JOA from 7.4 to 10.2 Not reported
VAS leg/thoracic 3 to 0.5
Follow-up time 15 months
Table 1. Summary of transforaminal endoscopic thoracic discectomy clinical series reviewed

VAS, visual analogue scale; ODI, Oswestry-Disability Index; JOA, Japanese Orthopaedic Association score.

Values are presented as means for VAS, ODI, JOA score and follow-up time, and percentage (%) for MacNab criteria outcomes. VAS, JOA, and ODI values are presented as mean preoperative to mean postoperative.