Literature DB >> 19403355

Surface current density mapping for identification of gastric slow wave propagation.

L Alan Bradshaw1, Leo K Cheng, William O Richards, Andrew J Pullan.   

Abstract

The magnetogastrogram (MGG) records clinically relevant parameters of the electrical slow wave of the stomach noninvasively. Besides slow wave frequency, gastric slow wave propagation velocity is a potentially useful clinical indicator of the state of health of gastric tissue, but it is a difficult parameter to determine from noninvasive bioelectric or biomagnetic measurements. We present a method for computing the surface current density from multichannel MGG recordings that allows computation of the propagation velocity of the gastric slow wave. A moving dipole source model with hypothetical as well as realistic biomagnetometer parameters demonstrates that while a relatively sparse array of magnetometer sensors is sufficient to compute a single average propagation velocity, more detailed information about spatial variations in propagation velocity requires higher density magnetometer arrays. Finally, the method is validated with simultaneous MGG and serosal electromyography measurements in a porcine subject.

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Year:  2009        PMID: 19403355      PMCID: PMC2722927          DOI: 10.1109/TBME.2009.2021576

Source DB:  PubMed          Journal:  IEEE Trans Biomed Eng        ISSN: 0018-9294            Impact factor:   4.538


  32 in total

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4.  Visualization of atrial excitation by magnetocardiogram.

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Journal:  Med Biol Eng Comput       Date:  1986-03       Impact factor: 2.602

Review 9.  Anatomically realistic multiscale models of normal and abnormal gastrointestinal electrical activity.

Authors:  Leo K Cheng; Rie Komuro; Travis M Austin; Martin L Buist; Andrew J Pullan
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Journal:  Med Biol Eng Comput       Date:  2002-05       Impact factor: 2.602

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  13 in total

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2.  Noninvasive Magnetogastrography Detects Erythromycin-Induced Effects on the Gastric Slow Wave.

Authors:  Suseela Somarajan; Nicole D Muszynski; Dilovan Hawrami; Joseph D Olson; Leo K Cheng; Leonard A Bradshaw
Journal:  IEEE Trans Biomed Eng       Date:  2018-05-17       Impact factor: 4.538

3.  Effects of body mass index on gastric slow wave: a magnetogastrographic study.

Authors:  S Somarajan; S Cassilly; C Obioha; W O Richards; L A Bradshaw
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4.  High-Resolution Electrogastrogram: A Novel, Noninvasive Method for Determining Gastric Slow-Wave Direction and Speed.

Authors:  Armen A Gharibans; Sanggyun Kim; David Kunkel; Todd P Coleman
Journal:  IEEE Trans Biomed Eng       Date:  2016-06-09       Impact factor: 4.538

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Authors:  J H K Kim; A J Pullan; L A Bradshaw; L K Cheng
Journal:  Physiol Meas       Date:  2012-03-14       Impact factor: 2.833

6.  Characterization of gastric electrical activity using magnetic field measurements: a simulation study.

Authors:  J H K Kim; L A Bradshaw; A J Pullan; L K Cheng
Journal:  Ann Biomed Eng       Date:  2009-09-23       Impact factor: 3.934

7.  Detailed measurements of gastric electrical activity and their implications on inverse solutions.

Authors:  Leo K Cheng; Greg O'Grady; Peng Du; John U Egbuji; John A Windsor; Andrew J Pullan
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8.  Reconstruction of multiple gastric electrical wave fronts using potential-based inverse methods.

Authors:  J H K Kim; A J Pullan; L K Cheng
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9.  Characterization of Electrophysiological Propagation by Multichannel Sensors.

Authors:  L Alan Bradshaw; Juliana H Kim; Suseela Somarajan; William O Richards; Leo K Cheng
Journal:  IEEE Trans Biomed Eng       Date:  2015-11-19       Impact factor: 4.538

10.  Source localization for gastric electrical activity using simulated magnetogastrographic data.

Authors:  Recep Avci; Niranchan Paskaranandavadivel; Stefan Calder; Peng Du; Leonard A Bradshaw; Leo K Cheng
Journal:  Conf Proc IEEE Eng Med Biol Soc       Date:  2019-07
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