Electrophysiological Profiling

Electrophysiological profiling is the measurement and analysis of electrical activity in cells, tissues, or neural circuits to characterize how they communicate and function. In neuroscience, electrodes or patch-clamp pipettes detect membrane-voltage changes, ionic currents, action potentials, and synaptic responses, often under controlled stimulation or pharmacological conditions; the resulting signals reveal properties such as excitability, connectivity, and firing patterns. These profiles help compare neuronal subtypes, assess circuit development and dysfunction, evaluate effects of drugs or genetic changes, and validate engineered neural models. By linking electrical behavior to cellular and network activity, the approach supports research into sensation, movement, cognition, and neurological disease.

Electrophysiological Profiling - Related Videos

Research

JoVE Journal - Medicine
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Non-fluoroscopic Catheter Tracking for Fluoroscopy Reduction in Interventional Electrophysiology

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Cited by 4 •

2015

Radiation exposure is an underestimated risk in complex ablation procedures. Here, we describe a protocol to significantly decrease fluoroscopy time and dosage for both the patient and the lab staff by using a novel non-fluoroscopic catheter visualization system.

Research

JoVE Journal - Biology

Applying Microfluidics to Electrophysiology

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Cited by 1 •

2007

Microfluidics can be integrated with standard electrophysiology techniques to allow new experimental modalities. Specifically, the motivation for the ...

Research

JoVE Journal - Neuroscience
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Electrophysiology of Scorpion Peg Sensilla

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Cited by 4 •

2011

This article describes an electrophysiological method for isolating chemical stimulation to individual sensilla via extracellular, tip-recordings under mineral oil.

Forebrain Electrophysiological Recording in Larval Zebrafish

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Cited by 55 •

2013

A simple method to record extracellular field potentials in the larval zebrafish forebrain is described. The method provides a robust in vivo read-out of seizure-like activity. This technique can be used with genetically modified zebrafish larvae carrying epilepsy-related genes or seizures evoked by administration of convulsant drugs.

Research

JoVE Journal - Medicine
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Remote Magnetic Navigation for Accurate, Real-time Catheter Positioning and Ablation in Cardiac Electrophysiology Procedures

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Cited by 51 •

2013

This report provides a detailed description of a new remote navigation system based on magnetic driven forces, which has been recently introduced as a new robotic tool for human cardiac electrophysiology procedures.

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