Optical Topographic Imaging for Spinal Intraoperative Three-Dimensional Navigation in Mini-Open Approaches: A Prospective Cohort Study of Initial Preclinical and Clinical Feasibility.


Journal

World neurosurgery
ISSN: 1878-8769
Titre abrégé: World Neurosurg
Pays: United States
ID NLM: 101528275

Informations de publication

Date de publication:
05 2019
Historique:
received: 15 10 2018
revised: 20 01 2019
accepted: 21 01 2019
pubmed: 12 2 2019
medline: 24 12 2019
entrez: 12 2 2019
Statut: ppublish

Résumé

Computer-assisted three-dimensional navigation often guides spinal instrumentation. Optical topographic imaging (OTI) offers comparable accuracy and significantly faster registration relative to current navigation systems in open posterior thoracolumbar exposures. We validate the usefulness and accuracy of OTI in minimally invasive spinal approaches. Mini-open midline posterior exposures were performed in 4 human cadavers. Square exposures of 25, 30, 35, and 40 mm were registered to preoperative computed tomography imaging. Screw tracts were fashioned using a tracked awl and probe with instrumentation placed. Navigation data were compared with screw positions on postoperative computed tomography imaging, and absolute translational and angular deviations were computed. In vivo validation was performed in 8 patients, with mini-open thoracolumbar exposures and percutaneous placement of navigated instrumentation. Navigated instrumentation was performed in the previously described manner. For 37 cadaveric screws, absolute translational errors were (1.79 ± 1.43 mm) and (1.81 ± 1.51 mm) in the axial and sagittal planes, respectively. Absolute angular deviations were (3.81 ± 2.91°) and (3.45 ± 2.82°), respectively (mean ± standard deviation). The number of surface points registered by the navigation system, but not exposure size, correlated positively with the likelihood of successful registration (odds ratio, 1.02; 95% confidence interval, 1.009-1.024; P < 0.001). Fifty-five in vivo thoracolumbar pedicle screws were analyzed. Overall (mean ± standard deviation) axial and sagittal translational errors were (1.79 ± 1.41 mm) and (2.68 ± 2.26 mm), respectively. Axial and sagittal angular errors were (3.63° ± 2.92°) and (4.65° ± 3.36°), respectively. There were no radiographic breaches >2 mm or any neurovascular complications. OTI is a novel navigation technique previously validated for open posterior exposures and in this study has comparable accuracy for mini-open minimally invasive surgery exposures. The likelihood of successful registration is affected more by the geometry of the exposure than by its size.

Identifiants

pubmed: 30743024
pii: S1878-8750(19)30312-2
doi: 10.1016/j.wneu.2019.01.201
pii:
doi:

Types de publication

Clinical Trial Journal Article Validation Study

Langues

eng

Sous-ensembles de citation

IM

Pagination

e863-e872

Informations de copyright

Copyright © 2019 Elsevier Inc. All rights reserved.

Auteurs

Daipayan Guha (D)

Division of Neurosurgery, Department of Surgery, University of Toronto. Toronto, Toronto, Ontario, Canada; Institute of Medical Science, School of Graduate Studies, University of Toronto. Toronto, Toronto, Ontario, Canada; Biophotonics and Bioengineering Laboratory, Sunnybrook Health Sciences Centre. Toronto, Toronto, Ontario, Canada. Electronic address: deep.guha@mail.utoronto.ca.

Raphael Jakubovic (R)

Biophotonics and Bioengineering Laboratory, Sunnybrook Health Sciences Centre. Toronto, Toronto, Ontario, Canada; Departments of Biomedical Physics, Ryerson University, Toronto, Ontario, Canada.

Naif M Alotaibi (NM)

Division of Neurosurgery, Department of Surgery, University of Toronto. Toronto, Toronto, Ontario, Canada; Institute of Medical Science, School of Graduate Studies, University of Toronto. Toronto, Toronto, Ontario, Canada.

Jesse M Klostranec (JM)

Department of Medical Imaging, University of Toronto, Toronto, Ontario, Canada.

Sidharth Saini (S)

Department of Medical Imaging, University of Toronto, Toronto, Ontario, Canada.

Ryan Deorajh (R)

Biophotonics and Bioengineering Laboratory, Sunnybrook Health Sciences Centre. Toronto, Toronto, Ontario, Canada.

Shaurya Gupta (S)

Biophotonics and Bioengineering Laboratory, Sunnybrook Health Sciences Centre. Toronto, Toronto, Ontario, Canada; Faculty of Applied Sciences and Engineering, University of Toronto, Toronto, Ontario, Canada.

Michael G Fehlings (MG)

Division of Neurosurgery, Department of Surgery, University of Toronto. Toronto, Toronto, Ontario, Canada; Institute of Medical Science, School of Graduate Studies, University of Toronto. Toronto, Toronto, Ontario, Canada.

Todd G Mainprize (TG)

Division of Neurosurgery, Department of Surgery, University of Toronto. Toronto, Toronto, Ontario, Canada.

Albert Yee (A)

Division of Orthopedic Surgery, Department of Surgery, University of Toronto, Toronto, Ontario, Canada.

Victor X D Yang (VXD)

Division of Neurosurgery, Department of Surgery, University of Toronto. Toronto, Toronto, Ontario, Canada; Institute of Medical Science, School of Graduate Studies, University of Toronto. Toronto, Toronto, Ontario, Canada; Biophotonics and Bioengineering Laboratory, Sunnybrook Health Sciences Centre. Toronto, Toronto, Ontario, Canada; Department of Electrical and Computer Engineering, Ryerson University, Toronto, Ontario, Canada.

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