Skip to main navigation Skip to main content
  • E-Submission
  • Contact us

NS : Neurospine

OPEN ACCESS
ABOUT
BROWSE ARTICLES
FOR AUTHORS

Articles

Page Path

Original Article

Successful Criteria for Indirect Decompression With Lateral Lumbar Interbody Fusion

Neurospine 2022;19(3):805-815.
Published online: August 10, 2022

1Department of Orthopaedics, Faculty of Medicine, Chulalongkorn University and King Chulalongkorn Memorial Hospital, Thai Red Cross Society, Bangkok, Thailand

2Center of Excellence in Biomechanics and Innovative Spine Surgery, Chulalongkorn University, Bangkok, Thailand

3Department of Orthopedics, Queen Savang Vadhana Memorial Hospital, Thai Red Cross Society, Sriracha, Chonburi, Thailand

4Biostatistics Excellence Centre, Faculty of Medicine, Chulalongkorn University, Bangkok, Thailand

5The Kirby Institute, University of New South Wales, Sydney, Australia

Corresponding Author Weerasak Singhatanadgige Department of Orthopaedics, Faculty of Medicine, Chulalongkorn University and King Chulalongkorn Memorial Hospital, 1873 Rama IV road, Pathumwan, Bangkok 10330, Thailand Email: dr.weerasaks@gmail.com
• Received: January 19, 2022   • Revised: May 19, 2022   • Accepted: May 25, 2022

Copyright © 2022 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.

  • 9,921 Views
  • 437 Download
  • 28 Web of Science
  • 32 Crossref
  • 34 Scopus
prev next

Citations

Citations to this article as recorded by  Crossref logo
  • Is Congenital Lumbar Spinal Canal Stenosis a Contraindication for Indirect Decompression by Lateral Lumbar Interbody Fusion (LLIF)?
    Weerasak Singhatanadgige, Thada Nashinoros, Teerachat Tanasansomboon, Wicharn Yingsakmongkol, Vit Kotheeranurak, Worawat Limthongkul
    Global Spine Journal.2026; 16(5): 2117.     CrossRef
  • Oblique Lateral Interbody Fusion With Lateral Vertebral Screw Fixation Versus Transforaminal Lumbar Interbody Fusion for Severe Lumbar Stenosis: Results of a Multicenter Randomized Controlled Trial
    Xuefeng Li, Cheng Lin, Tangyiheng Chen, Renjie Li, Dapeng Li, Sheng Song, Huilin Yang, Genlei Chu, Weimin Jiang, Yijie Liu
    Neurosurgery.2026;[Epub]     CrossRef
  • Lumbar Foraminal Morphology Can Affect Outcomes of Indirect Decompression: A Systematic Review and Novel Classification
    Rakan Bokhari, Mohamad Bakhaidar, Abdulrahman Alnaseem, Khalid Bajunaid, Omar Aljohani, Mohamed Alwadai, Saman Shabani, Rodrigo Navarro-Ramirez, Christoph P. Hofstetter, Muhammad Abd-El-Barr
    Global Spine Journal.2026;[Epub]     CrossRef
  • Global research landscape and citation dynamics of oblique lumbar interbody fusion (OLIF): A bibliometric analysis of the 100 most influential articles
    Badr Hafiz, Thamer Alsharif, Faisal Sukkar, Moaath Alghamdi, Ali Zaki Alhabib, Shuruq Obaid Alshammari, Saleh Baeesa
    Brain and Spine.2026; 6: 106043.     CrossRef
  • The iLLIF score: a predictive success scoring system for indirect decompression in lateral lumbar interbody fusion
    Wicharn Yingsakmongkol, Narat Virojanawat, Khanathip Jitpakdee, Surachat Jaroenwareekul, Worawat Limthongkul, Vit Kotheeranurak, Weerasak Singhatanadgige
    European Spine Journal.2026;[Epub]     CrossRef
  • Static Versus Expandable Cages in Minimally Invasive Lateral Lumbar Interbody Fusion
    Ryan S. Beyer, Tara Shooshani, Bianca Batista, Genevieve M. Fraipont, Omead Pooladzandi, Nolan J. Brown, Zach Pennington, Martin H. Pham
    Clinical Spine Surgery.2025; 38(7): 326.     CrossRef
  • Factors affecting outcomes of indirect decompression after oblique and lateral lumbar interbody fusions
    Kyle M M Behrens, Hossein Elgafy
    World Journal of Orthopedics.2025;[Epub]     CrossRef
  • Patient selection and workup
    David Strong, Joel Steiner, Robert Lee
    Seminars in Spine Surgery.2025; 37(1): 101158.     CrossRef
  • Ligamentotaxis Effect of Lateral Lumber Interbody Fusion and Cage Subsidence
    Ryosuke Tomio
    Journal of Clinical Medicine.2025; 14(13): 4554.     CrossRef
  • Pearls and Pitfalls of Revision Unilateral Biportal Endoscopic Lumbar Spine Surgery: A Technical Note
    Jiawen Fong, Zi Xian Justin Chou, Walter-Soon-Yaw Wong, Yilun Huang
    Cureus.2025;[Epub]     CrossRef
  • Effect of microscope-assisted modified lateral lumbar interbody fusion and impact on lumbar lordosis and intervertebral height
    Weijian Wang, Jilong An, Jiaqi Li, Han Wu, Haoyu Wu, Yapeng Sun, Wei Zhang
    BMC Musculoskeletal Disorders.2025;[Epub]     CrossRef
  • Three Cases of Indirect Decompression Failure Following Oblique Lumbar Interbody Fusion Requiring Early Direct Posterior Decompression: Analysis of Etiologies and Literature Review
    Satoshi Hattori, Satoru Matsutani
    Cureus.2025;[Epub]     CrossRef
  • Comparison of midterm outcomes between biportal endoscopic transforaminal lumbar interbody fusion and oblique lumbar interbody fusion with lateral vertebral body screw fixation for single level spondylolisthesis
    Fu-Cheng Kao, Shih-Feng Hung, Yu-Pao Hsu, Tsung-Ting Tsai, Hung-Kang Wu, Ming-Te Cheng, Kuang-Kai Hsueh, Po-Yuan Lin, Ching-Hsiao Yu
    BMC Musculoskeletal Disorders.2025;[Epub]     CrossRef
  • Prediction of Angle Loss after L4/5 Oblique Lumbar Interbody Fusion : Development of a Risk Stratification Model
    Se-Woon Kim, Su-Hun Lee, Jun-Seok Lee, Chi-Hyung Lee, Chang-Hyun Kim, Soon-Ki Sung, Dong-Wuk Son, Sang-Weon Lee
    Journal of Korean Neurosurgical Society.2025; 68(6): 724.     CrossRef
  • Efficacy observation of oblique lateral interbody fusion (OLIF) in treating severe spinal stenosis
    Yiliya Yilihamu, Jun Mo, Zhanjun Ma, Jianjiang Li, Yifei Huang
    BMC Surgery.2025;[Epub]     CrossRef
  • Is Direct Decompression Necessary for Lateral Lumbar Interbody Fusion (LLIF)? A Randomized Controlled Trial Comparing Direct and Indirect Decompression With LLIF in Selected Patients
    Worawat Limthongkul, Chayapong Thanapura, Khanathip Jitpakdee, Pakawas Praisarnti, Vit Kotheeranurak, Wicharn Yingsakmongkol, Teerachat Tanasansomboon, Weerasak Singhatanadgige
    Neurospine.2024; 21(1): 342.     CrossRef
  • Impact of Osteoporosis on Short-Term Surgical Outcomes in Lumbar Degenerative Disease Patients Undergoing Lateral Lumbar Interbody Fusion: A Retrospective Analysis
    Akihiko Hiyama, Daisuke Sakai, Hiroyuki Katoh, Masato Sato, Masahiko Watanabe
    World Neurosurgery.2024; 188: e424.     CrossRef
  • Oblique Lumbar Interbody Fusion Combined with Posterior Percutaneous Pedicle Screw Internal Fixation: Does Variability in Cage Position Influence Clinical Outcomes?
    Xingda Chen, Liekun Chen, Jingjing Tang, Wanyan Chen, Zefeng Song, Zelin Zhou, Hang Zhuo, Riwei Tan, Rueishiuan Jiang, Wenhua Zhao, De Liang, Hui Ren, Gengyang Shen, Xiaobing Jiang
    World Neurosurgery.2024; 189: e904.     CrossRef
  • A Comprehensive Analysis of Potential Complications after Oblique Lumbar Interbody Fusion : A Review of Postoperative Magnetic Resonance Scans in Over 400 Cases
    Kang-Hoon Lee, Su-Hun Lee, Jun-Seok Lee, Young-Ha Kim, Soon-Ki Sung, Dong-Wuk Son, Sang-Weon Lee, Geun-Sung Song
    Journal of Korean Neurosurgical Society.2024; 67(5): 550.     CrossRef
  • Risk Factors of Unsatisfactory Outcomes Requiring Additional Intervention Following Oblique Lateral Interbody Fusion
    Worawat Limthongkul, Bandid Chaiwongwattana, Stephen J. Kerr, Teerachat Tanasansomboon, Vit Kotheeranurak, Wicharn Yingsakmongkol, Weerasak Singhatanadgige
    Neurospine.2024; 21(3): 845.     CrossRef
  • Postoperative urinary retention after oblique lumbar interbody fusion under the systematic management protocol
    Joonsoo Lim, Jangyeob Lim, Asfandyar Khan, Chang-Hyun Lee, Jun-Hoe Kim, Sejin Choi, Tae-Shin Kim, Yunhee Choi, Chun Kee Chung, Sangwook T. Yoon, Kyoung-Tae Kim, Chi Heon Kim
    Scientific Reports.2024;[Epub]     CrossRef
  • Percutaneous transforaminal endoscopic surgery combined with mini-incision OLIF and anterolateral screws rod fixation vs. MIS-TLIF for surgical treatment of single-level lumbar spondylolisthesis
    Tianyao Zhou, Wenshuai Fan, Yutong Gu, Wu Che, Liang Zhang, Yichao Wang
    Frontiers in Surgery.2023;[Epub]     CrossRef
  • Hybrid surgery of percutaneous transforaminal endoscopic surgery (PTES) combined with OLIF and anterolateral screws rod fixation for treatment of multi-level lumbar degenerative diseases with intervertebral instability
    Tianyao Zhou, Yutong Gu
    Journal of Orthopaedic Surgery and Research.2023;[Epub]     CrossRef
  • Comparing Efficacy of Lumbar Disc Space Preparation via an Anterior-to-Psoas Approach Between Intraoperative Conventional Fluoroscopy and Computed Tomographic-Based Navigation System: A Cadaveric Study
    Worawat Limthongkul, Waranyoo Wathanavasin, Vit Kotheeranurak, Thanadol Tangdamrongtham, Teerachat Tanasansomboon, Wicharn Yingsakmongkol, Weerasak Singhatanadgige
    World Neurosurgery.2023; 176: e226.     CrossRef
  • Mini-Open Intercostal Retroperitoneal Approach for Upper Lumbar Spine Lateral Interbody Fusion
    Su Hun Lee, Dong Wuk Son, Sung Hyun Bae, Jun Seok Lee, Young Ha Kim, Soon Ki Sung, Sang Weon Lee, Geun Sung Song
    Neurospine.2023; 20(2): 553.     CrossRef
  • Effective Modulation of Inflammation and Oxidative Stress for Enhanced Regeneration of Intervertebral Discs Using 3D Porous Hybrid Protein Nanoscaffold
    Letao Yang, Basanta Bhujel, Yannan Hou, Jeffrey Luo, Seong Bae An, Inbo Han, Ki‐Bum Lee
    Advanced Materials.2023;[Epub]     CrossRef
  • Letter to the Editor : Classifying the Anatomical Location of the Ureter after Retroperitoneal Dissection
    Su-Hun Lee, Dong-Wuk Son, Jun-Seok Lee, Geun-Sung Song
    Journal of Korean Neurosurgical Society.2023; 66(5): 605.     CrossRef
  • Simultaneous Single-Position Lateral Lumbar Interbody Fusion Surgery and Unilateral Percutaneous Pedicle Screw Fixation for Spondylolisthesis
    Hui Lv, Yu Sheng Yang, Jian Hong Zhou, Yuan Guo, Hui Chen, Fei Luo, Jian Zhong Xu, Zhong Rong Zhang, Ze Hua Zhang
    Neurospine.2023; 20(3): 824.     CrossRef
  • Surgical treatment of spondylolisthesis by oblique lumbar interbody fusion and transpedicular screw fixation: Comparison between conventional double position versus navigation-assisted single lateral position
    Junghoon Han, Chang-Min Ha, Woon Tak Yuh, Young San Ko, Jun-Hoe Kim, Tae-Shin Kim, Chang-Hyun Lee, Sungjoon Lee, Sun-Ho Lee, Asfandyar Khan, Chun Kee Chung, Chi Heon Kim, Mohamed El-Sayed Abdel-Wanis
    PLOS ONE.2023; 18(9): e0291114.     CrossRef
  • Enhanced Intervertebral Disc Repair via Genetically Engineered Mesenchymal Stem Cells with Tetracycline Regulatory System
    Yeji Kim, Seong Bae An, Sang-Hyuk Lee, Jong Joo Lee, Sung Bum Kim, Jae-Cheul Ahn, Dong-Youn Hwang, Inbo Han
    International Journal of Molecular Sciences.2023; 24(22): 16024.     CrossRef
  • Safety and Feasibility of Intradiscal Administration of Matrilin-3-Primed Adipose-Derived Mesenchymal Stromal Cell Spheroids for Chronic Discogenic Low Back Pain: Phase 1 Clinical Trial
    Dong Hyun Lee, Kwang-Sook Park, Hae Eun Shin, Sung Bum Kim, Hyejeong Choi, Seong Bae An, Hyemin Choi, Joo Pyung Kim, Inbo Han
    International Journal of Molecular Sciences.2023; 24(23): 16827.     CrossRef
  • An Expanded Surgical Corridor of Oblique Lateral Interbody Fusion at L4–5: A Magnetic Resonance Imaging Study
    Worawat Limthongkul, Pakawas Praisarnti, Teerachat Tanasansomboon, Natavut Prasertkul, Vit Kotheeranurak, Wicharn Yingsakmongkol, Weerasak Singhatanadgige
    Neurospine.2023; 20(4): 1450.     CrossRef

Download Citation

Download a citation file in RIS format that can be imported by all major citation management software, including EndNote, ProCite, RefWorks, and Reference Manager.

Format:

Include:

Successful Criteria for Indirect Decompression With Lateral Lumbar Interbody Fusion
Neurospine. 2022;19(3):805-815.   Published online August 10, 2022
Download Citation

Download a citation file in RIS format that can be imported by all major citation management software, including EndNote, ProCite, RefWorks, and Reference Manager.

Format:
Include:
Successful Criteria for Indirect Decompression With Lateral Lumbar Interbody Fusion
Neurospine. 2022;19(3):805-815.   Published online August 10, 2022
Close

Figure

  • 0
  • 1
  • 2
Successful Criteria for Indirect Decompression With Lateral Lumbar Interbody Fusion
Image Image Image
Fig. 1. Reducible disc height, defined as presence of disc height discrepancy between standing (A) and supine position (B) in a case with spondylolisthesis L4–5. The narrow L4–5 intervertebral disc space in a standing plain radiograph was restored in the supine position, as evidenced in the magnetic resonance imaging. The disc height is calculated as the mean of anterior and posterior disc height = (a+b)/2.
Fig. 2. Preoperative (A) and postoperative (B) T2-axial magnetic resonance images showing an indirect decompression effect in a case with successful indirect decompression with lateral lumbar interbody fusion.
Fig. 3. Preoperative (A) and postoperative (B) T2-axial magnetic resonance images showing an insufficient indirect decompression effect in a case with indirect decompression failure. A subsequent direct posterior decompression was performed to relieve persistent pain.
Successful Criteria for Indirect Decompression With Lateral Lumbar Interbody Fusion
Characteristic Total (n = 191) Success (n = 178) Failure (n = 13) p-value
Age (yr) 65 (59–73) 65 (59-72) 71 (59–75) 0.27
Female sex 178 (93.2) 159 (89.3) 12 (92.3) 1.0
BMI (kg/m2) 24.7 (22.5–27.5) 24.7 (22.4–27.4) 24.8 (22.2–28.2) 0.22
BMD (T-score) -1.1 (-1.8 to 0) -1.04 (-1.7 to 0.1) -2.7 (-2.8 to -2.2) 0.003
n = 66 n = 61 n= 5
Smoker 7 (3.7) 6 (3.5) 1 (7.7) 0.35
Diagnosis 0.65
 DDD/HNP 27 (14.1) 26 (14.6) 1 (7.7)
 Spinal stenosis 20 (10.5) 17 (9.6) 3 (23.1)
 Degen. spondylolisthesis 62 (32.5) 59 (33.2) 3 (23.1)
 Isthmic spondylolisthesis 8 (4.2) 8 (4.5) 0 (0)
 Degenerative scoliosis 14 (7.3) 13 (7.3) 1 (7.7)
 FBSS 9 (4.7) 9 (5.1) 0 (0)
 ASD 51 (26.7) 46 (25.8) 5 (38.5)
ODI 44.4 (31.1–60) 45 (32–60) 45 (24.4–55.6) 0.32
VASL 7 (5–8) 7 (5–8) 8 (0–9) 0.16
VASB 6 (1.25–8) 6 (1–8) 6 (4–8) 0.22
No. of treated levels 0.31
 One 147 (77.0) 135 (75.8) 12 (92.3)
 Two 44 (23.0) 43 (24.2) 1 (7.7)
Navigated O-arm 74 (38.7) 73 (41) 1 (7.7)
Follow-up period (mo) 24 (12–40) 24 (12–39) 34 (24–46) 0.22
LLIF type 0.78
 Prepsoas (OLIF) 82 (42.9) 77 (43.2) 5 (38.5)
 Transpsoas (XLIF) 109 (57.1) 101 (56.7) 8 (61.5)
Cage
 Height 10 (10–10) 10 (10–10) 10 (9–11) 0.90
 Width 18 (18–45) 18 (18–45) 18 (18–40.5) 0.38
 Length 55 (50–55) 55 (50–55) 50 (45–55) 0.45
 Lordotic angle 10 (6–10) 10 (6–10) 10 (8–10) 0.64
Fixation type 0.02
 Standalone 19 (8.1) 18 (8.1) 1 (7.1)
 Posterior PDS 169 (71.9) 163 (73.8) 6 (42.9)
 Anterolateral plate 40 (17.0) 33 (14.9) 7 (50.0)
 Lateral screw-rod 7 (3.0) 7 (3.2) 0 (0)
Variable Total (n = 235) Success (n = 221) Failure (n = 14) p-value
Preoperative
 Reducible disc height (%) 13.65 (8.4–21.18) 14.25 (8.68–22.13) 8.04 (5.09–11.52) 0.003
 Disc height (mm) 8.07 (6.61–9.85) 8.08 (6.61–9.80) 7.47 (6.99–10.04) 0.74
 Foraminal height (mm) 17 (14.98–18.69) 17.05 (14.95–18.8) 16.58 (15.9–18.46) 0.87
 Canal diameter (mm) 12 (10.19–13.91) 11.9 (10.17–13.9) 12.76 (12.18–14.45) 0.32
 Lordotic angle (°) 10 (5–15) 10 (5–15) 9 (7–10) 0.40
Postoperative
 Disc height (mm) 12.2 (10.4–13.4) 12.195 (10.53–13.42) 9.36 (8.5–11.45) 0.001
 Foraminal height (mm) 19.5 (17.7–21.6) 19.7 (17.9–21.6) 18.0 (16.6–19.1) 0.23
 Canal diameter (mm) 14.2 (12.5–16.1) 14.2 (12.4–16.1) 14.3 (13.1–15.5) 0.64
 Lordotic angle (°) 13 (7–17) 13 (7–17) 10.5 (4–15) 0.22
Cage subsidence (mm) 2 (0.1–3.5) 2 (0–3.2) 5.1 (2.5–8.8) < 0.001
Cage subsidence
 Grade 0 135 (57.5) 133 (60.2) 2 (14.3)
 Grade 1 77 (32.8) 73 (33.0) 4 (28.6)
 Grade 2 12 (5.1) 11 (5.0) 1 (7.1)
 Grade 3 11 (4.7) 4 (1.8) 7 (50) < 0.001
Variable Sensitivity (%) Specificity (%) AROC (95% CI)
Reducible disc height < 13% 85.7 56.0 0.71 (0.61–0.80)
Postop disc height < 10 mm 57.1 82.4 0.69 (0.56–0.83)
BMD T-score < -2.1 80.0 88.9 0.84 (0.64–1.0)
Variable Univariable
Multivariable
OR (95% CI) p-value aOR (95% CI) p-value
BMD T-score < -2.1* 32.6 (3.0–351.9) 0.004
O-arm navigated vs. nonnavigated 0.2 (0.02–1.3) 0.09 0.2 (0.02–3.1) 0.27
Reducible disc height < 13% 6.7 (1.8–25.4) 0.005 18.9 (3.8–93.9) < 0.001
Postoperative disc height < 10 mm 5.1 (2.0–12.8) 0.001 3.6 (0.98–12.9) 0.054
Fixation 0.02 0.21
 Lateral screw-rod or posterior PDS 1 (ref) 1 (ref)
 Anterolateral plate 5.6 (1.7–18.7) 0.005 3.4 (0.8–13.9)
 Standalone 1.5 (0.2–13.9) 0.71 2.5 (0.2–28.6)
High-grade subsidence 15.6 (4.8–50.6) < 0.001 13.9 (3.4–56.0) < 0.001
Study Need additional direct decompression Criteria applied
Oliviera et al. [19], (2010) 9.5% (2/21) Not specific
Malham et al. [7], (2015) 9% (11/122) Not specific
Gabel et al. [11], (2015) 3.5% (1/28) 1. Lack of facet fusion on computed tomography
2. No free disc fragment
3. No compressive facet cyst on magnetic resonance imaging (MRI)
4. No frank osteoporosis
5. No congenital and/or severe spinal stenosis on MRI
6. Significant reduction (> 50%) in leg and back pain at rest
Wang et al. [18], (2017) 29% (13/45) Not specific
Lim et al. [10], (2019) 2% (1/50) Dynamic clinical symptoms (able to achieve a pain-free position preoperatively)
Rentenberger et al. [20], (2020) 19% (25/133) Not specific
Park et al. [8], (2020) 72% (62/86) Not specific
This study (2021) 6.8% (13/191) 1. Dynamic clinical symptoms
2. Presence of reducible disc height
3. No profound weakness
4. No static stenosis
Table 1. Preoperative demographic data, clinical and procedure-related characteristics

Values are presented as median (interquartile range) or number (%).

BMI, body mass index; BMD, bone mineral density; DDD, degenerative disc disease; HNP, herniated nucleus pulposus; FBSS, failed back surgery syndrome; ASD, adjacent segment disease; ODI, Oswestry Disability Index; VASL, visual analogue scale of leg pain; VASB, visual analogue scale of back pain; LLIF, lateral lumbar interbody fusion; PDS, pedicular screw.

Table 2. Preoperative and postoperative radiographic parameter values, by failure group

Values are presented as median (interquartile range) or number (%).

Table 3. Table showing sensitivity and specificity at dichotomized cutoffs for continuous parameters

AROC, area under the receiver-operating characteristic curve; CI, confidence interval; Postop, postoperative; BMD, bone mineral density.

Table 4. Univariable and multivariable of factors associated with failure

OR, odds ratio; aOR, adjusted OR; PDS, pedicular screw; BMD, bone mineral density.

Since BMD was available in only 35% of patients, we were unable to include this variable in the multivariate model.

Table 5. Summary of previously published data on indirect decompression failure and the proposed criteria