magnetocardiography
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Magnetocardiography (MCG) is a technique to measure the magnetic fields produced by electrical currents in the heart using extremely sensitive devices such as the superconducting quantum interference device (SQUID). If the magnetic field is measured using a multichannel device, a map of the magnetic field is obtained over the chest; from such a map, using mathematical algorithms that take into account the conductivity structure of the torso, it is possible to locate the source of the activity. For example, sources of abnormal rhythms or arrhythmia may be located using MCG.
Research
704 papers- Magnetocardiography for the detection of myocardial ischemia.Frontiers in cardiovascular medicine · 2023
- Clinical magnetocardiography: the unshielded bet-past, present, and future.Frontiers in cardiovascular medicine · 2023
- Magnetocardiography in the Evaluation of Sudden Cardiac Death Risk: A Systematic Review.Annals of noninvasive electrocardiology : the official journal of the International Society for Holter and Noninvasive Electrocardiology, Inc · 2024
- Magnetocardiography for fetal arrhythmias.Heart rhythm · 2008
- Magnetocardiography.Japanese heart journal · 1982
via PubMed
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Encyclopedic overview
4 sectionsContents
- History
- Clinical implementation
- See also
- References
Magnetocardiography (MCG) is a technique to measure the magnetic fields produced by electrical currents in the heart using extremely sensitive devices such as the superconducting quantum interference device (SQUID). If the magnetic field is measured using a multichannel device, a map of the magnetic field is obtained over the chest; from such a map, using mathematical algorithms that take into account the conductivity structure of the torso, it is possible to locate the source of the activity. For example, sources of abnormal rhythms or arrhythmia may be located using MCG.
== History == The first MCG measurements were made by Baule and McFee using two large coils placed over the chest, connected in opposition to cancel out the relatively large magnetic background. Heart signals were indeed seen, but were very noisy. The next development was by David Cohen, who used a magnetically shielded room to reduce the background, and a smaller coil with better electronics; the heart signals were now less noisy, allowing a magnetic map to be made, verifying the magnetic properties and source of the signal. However, the use of an inherently noisy coil detector discouraged widespread interest in the MCG. The turning point came with the development of the sensitive detector called the SQUID (superconducting quantum interference device) by James Zimmerman. The combination of this detector and Cohen's new shielded room at MIT allowed the MCG signal to be seen as clearly as the conventional electrocardiogram, and the publication of this result by Cohen et al. marked the real beginning of magnetocardiography (as well as biomagnetism generally).
Excerpted from Wikipedia’s “magnetocardiography” article, available under the CC BY-SA 4.0 licence.