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Related Experiment Video

Updated: Dec 6, 2025

Intra-Operative Neural Monitoring of Thyroid Surgery in a Porcine Model
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Intraoperative Neurophysiological Monitoring During Trigeminal Schwannoma Surgery.

Faisal R Jahangiri1,2,3, Abeera Azam1, Rabehah A Asdi3,1

  • 1Neurophysiology, Axis Neuromonitoring, Richardson, USA.

Cureus
|October 12, 2020
PubMed
Summary

Intraoperative Neurophysiological Monitoring (IONM) helps surgeons identify cranial nerves during skull base surgery, reducing injury risk. This technique is crucial for complex procedures like trigeminal schwannoma resection.

Keywords:
electroencephalographyelectromyographyemgionmsomatosensory evoked potentialssseptrigeminal nerve.trigeminal neuralgiatrigeminal schwannoma

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Area of Science:

  • Neurosurgery
  • Neurophysiology
  • Oncology

Background:

  • Skull base surgeries risk cranial nerve (CN) injury, particularly those controlling eye muscles (CN III, IV, V, VI).
  • Tumor distortion complicates identifying these nerves during surgery.
  • Trigeminal schwannomas, rare nerve sheath tumors, pose significant surgical challenges.

Observation:

  • Intraoperative Neurophysiological Monitoring (IONM) using electromyography (EMG) aids nerve localization.
  • IONM guides surgeons to avoid damaging critical neural structures.
  • Specialized expertise is needed for IONM in extraocular cranial nerve monitoring.

Findings:

  • IONM effectively guides surgeons during trigeminal schwannoma resection.
  • The study details IONM setup, stimulation techniques, and parameters for this specific tumor.
  • IONM minimizes intraoperative damage to involved neural structures.

Implications:

  • IONM is a valuable tool for improving surgical outcomes in complex skull base procedures.
  • Enhanced nerve identification through IONM can reduce the risk of temporary or permanent nerve paralysis.
  • Further application of IONM in high-risk cranial nerve surgeries is recommended.