Safety of intracranial electrodes in an MRI environment: a technical report

Author:

Bezchlibnyk Yarema B.1ORCID,Quiles Rolando23,Barber Jeremy4,Osa Benjamin4,Clifford Keven25,Murtaugh Ryan2

Affiliation:

1. Department of Neurosurgery and Brain Repair, Morsani School of Medicine University of South Florida Tampa Florida USA

2. Department of Radiology, Morsani School of Medicine University of South Florida Tampa Florida USA

3. Department of Radiology Tampa General Hospital Tampa Florida USA

4. PMT Corporation Chanhassen Minnesota USA

5. Tower Radiology Tampa USA

Abstract

AbstractIntroductionIntracranial electroencephalography (iEEG) involves placing intracranial electrodes to localise seizures in patients with medically refractory epilepsy. While magnetic resonance imaging (MRI) enables visualisation of electrodes within patient‐specific anatomy, the safety of these electrodes must be confirmed prior to routine clinical utilisation. Therefore, the purpose of this study was to evaluate the safety of iEEG electrodes from a particular manufacturer in a 3.0‐Tesla (3.0T) MRI environment.MethodsMeasurements of magnetically induced displacement force and torque were determined for each of the 10 test articles using standardised techniques. Test articles were subsequently evaluated for radiofrequency‐induced heating using a Perspex phantom in both open and ‘fault’ conditions. Additionally, we assessed radiofrequency (RF)‐induced heating with all test articles placed into the phantom simultaneously to simulate an implantation, again in both open and ‘fault’ conditions. Finally, each test article was evaluated for MRI artefacts.ResultsThe magnetically induced displacement force was found to be less than the force on the article due to gravity for all test articles. Similarly, the maximum magnetically induced torque was less than the worst‐case torque due to gravity for all test articles apart from the 8‐contact strip – for which it was 11% greater – and the depthalon cap. The maximum temperature change for any portion of any test article assessed individually was 1.7°C, or 1.2°C for any device component meant to be implanted intracranially. In the implantation configuration, the maximum recorded temperature change was 0.7°C.ConclusionsMRI may be safely performed for localising iEEG electrodes at 3.0T under certain conditions.

Publisher

Wiley

Reference26 articles.

1. Intracranial EEG and human brain mapping

2. MR imaging‐related heating of deep brain stimulation electrodes: in vitro study;Finelli DA;AJNR Am J Neuroradiol,2002

3. Safety of localizing epilepsy monitoring intracranial electroencephalograph electrodes using MRI: Radiofrequency-induced heating

4. ASTM Committee F04 on Medical and Surgical Materials and Devices SFoMTM.ASTM F2182‐11 Standard Test Method for Measurement of Radio Frequency Induced Heating On or Near Passive Implants During Magnetic Resonance Imaging. ASTM International West Conshohocken PA.2011.

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