Navigation and Image Injection for Control of Bone Removal and Osteotomy Planes in Spine Surgery

Oper Neurosurg (Hagerstown). 2017 Apr 1;13(2):297-304. doi: 10.1093/ons/opw017.

Abstract

Background and importance: In contrast to cranial interventions, neuronavigation in spinal surgery is used in few applications, not tapping into its full technological potential. We have developed a method to preoperatively create virtual resection planes and volumes for spinal osteotomies and export 3-D operation plans to a navigation system controlling intraoperative visualization using a surgical microscope's head-up display. The method was developed using a Sawbone ® model of the lumbar spine, demonstrating feasibility with high precision. Computer tomographic and magnetic resonance image data were imported into Amira ® , a 3-D visualization software. Resection planes were positioned, and resection volumes representing intraoperative bone removal were defined. Fused to the original Digital Imaging and Communications in Medicine data, the osteotomy planes were exported to the cranial version of a Brainlab ® navigation system. A navigated surgical microscope with video connection to the navigation system allowed intraoperative image injection to visualize the preplanned resection planes.

Clinical presentation: The workflow was applied to a patient presenting with a congenital hemivertebra of the thoracolumbar spine. Dorsal instrumentation with pedicle screws and rods was followed by resection of the deformed vertebra guided by the in-view image injection of the preplanned resection planes into the optical path of a surgical microscope. Postoperatively, the patient showed no neurological deficits, and the spine was found to be restored in near physiological posture.

Conclusion: The intraoperative visualization of resection planes in a microscope's head-up display was found to assist the surgeon during the resection of a complex-shaped bone wedge and may help to further increase accuracy and patient safety.

Keywords: Augmented reality; Osteotomy; PSO; Spinal deformity correction; Spinal navigation.

Publication types

  • Case Reports

MeSH terms

  • Computer Simulation
  • Female
  • Humans
  • Kyphosis / surgery*
  • Lumbar Vertebrae / surgery*
  • Middle Aged
  • Models, Anatomic
  • Neuronavigation / methods*
  • Osteotomy / methods*
  • Spinal Fusion / methods
  • Treatment Outcome