研究目的
To investigate the safety of a novel Electrical Stimulation Mapping (ESM) protocol characterized by high-intensity and high-frequency currents delivered at a short-time sequence in young children, where standard ESM protocols fail in about 20% of cases, by assessing the thermic effects of ESM on stimulated brain tissue using thermographic camera and histopathological examination.
研究成果
The study demonstrated that the novel ESM protocol leads to a limited increase in local tissue temperature within safe limits, with no microscopic changes observed in tissue level, proving the safety of the proposed ESM protocol.
研究不足
The study was limited by the impossibility of measuring referential brain surface temperature together with stimulating electrodes, variations in emissivity of irrigated cortex, and the inability to use thermography with ECoG strip electrodes due to their opacity to infrared radiation.
1:Experimental Design and Method Selection:
The study was designed to assess the thermal effects of a novel ESM protocol on brain tissue using infrared thermography and histopathological evaluation. The protocol involved short-time bursts of high-frequency and high-peak current stimulation.
2:Sample Selection and Data Sources:
Thirteen patients aged 2 to 18 years undergoing resective epilepsy surgery were selected. The cortex planned for resection was exposed to ESM stimulation bursts with thermography monitoring.
3:List of Experimental Equipment and Materials:
Equipment included a thermography camera (VarioCAM-HD), neuro-stimulator (Endeavor IOM System), and hand bipolar electrodes for ESM.
4:Experimental Procedures and Operational Workflow:
The cortex was stimulated with increasing current intensity from 10 to 100 mA. Thermograms were captured during stimulation, and histopathological evaluation was performed post-resection.
5:Data Analysis Methods:
Thermograms were processed to reveal discrete ESM thermal effects. Temperature changes were analyzed, and histopathological findings were evaluated for tissue damage.
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