Micro Electrode Placement

Micro electrode placement is a neuroscience technique for positioning tiny conductive probes in or near neural tissue to record electrical activity or deliver controlled stimulation. Researchers guide the electrode to a defined brain region, often using stereotaxic coordinates and gradual advancement, while monitoring signal quality, tissue resistance, or neuronal responses to confirm its location. Precise placement enables measurements from individual neurons or local neural populations and supports studies of sensory processing, motor control, neural circuits, and brain disease. The method also provides a foundation for electrophysiology experiments and can inform the development of neural interfaces and stimulation-based therapies.

Micro Electrode Placement - Related Videos

Research

JoVE Journal - Neuroscience

Non-restraining EEG Radiotelemetry: Epidural and Deep Intracerebral Stereotaxic EEG Electrode Placement

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Cited by 21 •

2016

Non-restraining EEG radiotelemetry is a valuable methodological approach to record in vivo long-term electroencephalograms from freely moving rodents. This detailed protocol describes stereotaxic epidural and deep intracerebral electrode placement in different brain regions in order to obtain reliable recordings of CNS rhythmicity and CNS related behavioral stages.

Measuring the Electrophysiological Activity of Neuronal Networks Using Micro-Electrode Arrays

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2025

The video demonstrates how to use a microelectrode array (MEA) to record the electrophysiological activity of neurons derived from human induced pluripotent stem cells (hiPSCs). Electrophysiological activity from a multiwell MEA containing a neuron-astrocyte co-culture is recorded to detect action potentials from multiple neurons in the network, confirming the successful differentiation of hiPSCs into neurons.

Research

JoVE Journal - Biology
Free Sample

How to Culture, Record and Stimulate Neuronal Networks on Micro-electrode Arrays (MEAs)

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Cited by 86 •

2010

This protocol provides the necessary information for setting up, caring for, recording from and electrically stimulating cultures on MEAs. In vitro networks provide a means for asking physiologically relevant questions at the network and cellular levels leading to a better understanding of brain function and dysfunction.

Neural Activity Propagation in an Unfolded Hippocampal Preparation with a Penetrating Micro-electrode Array

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Cited by 2 •

2015

We have developed an in vitro unfolded hippocampus which preserves CA1-CA3 array of neurons. Combined with the penetrating micro-electrode array, neural activity can be monitored in both the longitudinal and transverse orientations. This method provides advantages over hippocampal slice preparations as the propagation in the entire hippocampus can be recorded simultaneously.

Differentiating Human Induced Pluripotent Stem Cells into Neurons on Micro-Electrode Arrays

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2025

The video demonstrates a method for generating excitatory cortical neurons from human-induced pluripotent stem cells (hiPSCs). Upon doxycycline induction, the hiPSCs overexpress neurogenin-2, a neural-specific transcription factor. By using specific media and co-culturing with astrocytes, this process facilitates the hiPSCs' differentiation into neurons with synaptic connections.

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