Literature DB >> 20404030

Magnetic measurements of peripheral nerve function using a neuromagnetic current probe.

Ranjith S Wijesinghe1.   

Abstract

The progress made during the last three decades in mathematical modeling and technology development for the recording of magnetic fields associated with cellular current flow in biological tissues has provided a means of examining action currents more accurately than that of using traditional electrical recordings. It is well known to the biomedical research community that the room-temperature miniature toroidal pickup coil called the neuromagnetic current probe can be employed to measure biologically generated magnetic fields in nerve and muscle fibers. In contrast to the magnetic resonance imaging technique, which relies on the interaction between an externally applied magnetic field and the magnetic properties of individual atomic nuclei, this device, along with its room-temperature, low-noise amplifier, can detect currents in the nano-Ampere range. The recorded magnetic signals using neuromagnetic current probes are relatively insensitive to muscle movement since these probes are not directly connected to the tissue, and distortions of the recorded data due to changes in the electrochemical interface between the probes and the tissue are minimal. Contrary to the methods used in electric recordings, these probes can be employed to measure action currents of tissues while they are lying in their own natural settings or in saline baths, thereby reducing the risk associated with elevating and drying the tissue in the air during experiments. This review primarily describes the investigations performed on peripheral nerves using the neuromagnetic current probe. Since there are relatively few publications on these topics, a comprehensive review of the field is given. First, magnetic field measurements of isolated nerve axons and muscle fibers are described. One of the important applications of the neuromagnetic current probe to the intraoperative assessment of damaged and reconstructed nerve bundles is summarized. The magnetic signals of crushed nerve axons and the determination of the conduction velocity distribution of nerve bundles are also reviewed. Finally, the capabilities and limitations of the probe and the magnetic recordings are discussed.

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Year:  2010        PMID: 20404030     DOI: 10.1258/ebm.2009.009306

Source DB:  PubMed          Journal:  Exp Biol Med (Maywood)        ISSN: 1535-3699


  3 in total

1.  Magnetospinography visualizes electrophysiological activity in the cervical spinal cord.

Authors:  Satoshi Sumiya; Shigenori Kawabata; Yuko Hoshino; Yoshiaki Adachi; Kensuke Sekihara; Shoji Tomizawa; Masaki Tomori; Senichi Ishii; Kyohei Sakaki; Dai Ukegawa; Shuta Ushio; Taishi Watanabe; Atsushi Okawa
Journal:  Sci Rep       Date:  2017-05-19       Impact factor: 4.379

2.  Noninvasive muscle activity imaging using magnetography.

Authors:  Rodolfo R Llinás; Mikhail Ustinin; Stanislav Rykunov; Kerry D Walton; Guilherme M Rabello; John Garcia; Anna Boyko; Vyacheslav Sychev
Journal:  Proc Natl Acad Sci U S A       Date:  2020-02-18       Impact factor: 11.205

3.  Measuring Cellular Ion Transport by Magnetoencephalography.

Authors:  Sudhir Kumar Sharma; Sauparnika Vijay; Sangram Gore; Timothy M Dore; Ramesh Jagannathan
Journal:  ACS Omega       Date:  2020-02-18
  3 in total

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