Optical Mapping

Optical mapping is an imaging technique that converts spatially distributed biological signals into maps, allowing researchers to visualize activity across living or excised tissues. In cardiac research, voltage-sensitive or calcium-sensitive fluorescent indicators report membrane depolarization, repolarization, or intracellular calcium changes, while high-speed cameras capture these signals across the tissue surface. The resulting maps reveal conduction pathways, activation patterns, repolarization heterogeneity, and abnormal wave activity that may promote arrhythmias. Optical mapping supports investigations of cardiac physiology and disease, evaluation of drug effects, and development of therapies by linking cellular electrical behavior with tissue-level function.

Optical Mapping - Related Videos

Research

JoVE Journal - Biology

Optical Mapping of Langendorff-perfused Rat Hearts

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Cited by 16 •

2009

This article describes a high temporal and spatial resolution technique to optically image action potential movement on the surface of Langendorff-perfused rat hearts using a potentiometric dye (di-8-ANEPPS).

Research

JoVE Journal - Bioengineering
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Multiparametric Optical Mapping of the Langendorff-perfused Rabbit Heart

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Cited by 30 •

2011

This article describes the basic procedures for conducting optical mapping experiments in the Langendorff-perfused rabbit heart using the panoramic imaging system, and the dual (voltage and calcium) imaging modality.

High-resolution Optical Mapping of the Mouse Sino-atrial Node

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Cited by 17 •

2016

Here, we present a protocol for optical mapping of electrical activity from the mouse right atrium and especially the sino-atrial node, at a high spatial and temporal resolution.

Research

JoVE Journal - Engineering
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Fiber Optic Distributed Sensors for High-resolution Temperature Field Mapping

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Cited by 8 •

2016

We demonstrate use of a fiber optic distributed sensor for mapping the temperature field of mixing air jets. The Rayleigh scattering-based sensor generates thousands of data points along a single fiber to provide exceptional spatial resolution that is unattainable with traditional sensors such as thermocouples.

Optical Mapping of Action Potentials and Calcium Transients in the Mouse Heart

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Cited by 71 •

2011

This paper details the dissection procedure, instrumental setup, and experimental conditions during optical mapping of transmembrane potential (Vm) and intracellular calcium transient (CaT) in intact isolated Langendorff perfused mouse hearts.

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