Electrocorticogram

An electrocorticogram (ECoG) is a recording of the brain’s electrical activity obtained directly from the surface of the cerebral cortex, providing high-resolution insight into neural function. During ECoG, electrodes placed on or beneath the dura mater detect voltage changes produced by synchronized activity in nearby neuronal populations, typically with less signal distortion than scalp electroencephalography. In neuroscience, ECoG helps localize seizure-generating regions, map functional cortex before surgery, and study sensory, motor, and cognitive processes. Its strong spatial and temporal resolution also supports the development of brain-computer interfaces and improves understanding of how distributed neural networks generate behavior.

Electrocorticogram - Related Videos

Research

JoVE Journal - Behavior

Manipulation of Epileptiform Electrocorticograms (ECoGs) and Sleep in Rats and Mice by Acupuncture

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Cited by 7 •

2016

This paper demonstrates the performance of acupuncture, epilepsy models, and the analysis of sleep in rodents. The acupuncture procedure and the identification of acupoints are described. Pilocarpine or pentylenetetrazol (PTZ) is used to induce epilepsy. Electrocorticogram (ECoG), electromyogram (EMG), brain temperature, and locomotor activity recordings are employed for sleep analysis.

Simultaneous Recordings of Cortical Local Field Potentials and Electrocorticograms in Response to Nociceptive Laser Stimuli from Freely Moving Rats

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Cited by 7 •

2019

We developed a technique that simultaneously records both electrocorticography and local field potentials in response to nociceptive laser stimuli from freely moving rats. This technique helps establish a direct relationship of electrocortical signals at the mesoscopic and macroscopic levels, which facilitates the investigation of nociceptive information processing in the brain.

Induction of an Isoelectric Brain State to Investigate the Impact of Endogenous Synaptic Activity on Neuronal Excitability In Vivo

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Cited by 3 •

2016

This procedure performs long-lasting in vivo intracellular recordings from single neurons during physiologically relevant cerebral states and after complete abolition of ongoing electrical activities, resulting in an isoelectric brain state. The physiological constants of the animal are carefully monitored during the transition to the artificial comatose condition.

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