Literature DB >> 18716118

Vibration response imaging technology in healthy subjects.

Mordechai Yigla1, Merav Gat, Jean-Jacques Meyer, Paul J Friedman, Toby M Maher, J Mark Madison.   

Abstract

OBJECTIVE: The vibration response imaging device that we studied (VRIxp) records the intensity and location of lung sounds during a cycle of breathing. The goals of this study were to describe the characteristic features and quantitative lung data recorded by the VRIxp device from healthy asymptomatic subjects. SUBJECTS AND METHODS: Breath sounds (frequency range, 150-250 Hz) recorded from the backs of 151 healthy asymptomatic subjects (96 nonsmokers and 55 smokers) by the VRIxp device were mapped to create a sequence of 2D images. Three raters interpreted and scored the images for predefined static and dynamic features. In addition, quantitative lung data were analyzed for characteristic regional distributions.
RESULTS: The readers of the images had good inter- and intrarater agreement. Image development in 93% of the evaluations showed an inspiratory and expiratory phase with a progressive and regressive stage that developed bilaterally in a vertical and synchronized manner. Characteristic image features of the maximum energy frame included a smooth, rounded, uninterrupted contour and a planar distribution, area size, and intensity that had right-left symmetry. Quantitative lung data expressed as percentages of the total (100%) vibration energy were normally distributed with mean values (+/- SD) of 55% +/- 6% for the left lung and 45% +/- 6% for the right lung. Most of the subjects with images, quantitative lung data, or both lacking these typical features were cigarette smokers or had a history of smoking (p < 0.05).
CONCLUSION: Breath sounds in healthy asymptomatic subjects can be recorded and displayed in a dynamic series of images that have predictable and characteristic features recognizable and complemented by quantitative lung data. Identification and description of these characteristic image features in this study will facilitate future studies of vibration imaging in specific pulmonary diseases.

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Year:  2008        PMID: 18716118     DOI: 10.2214/AJR.07.3151

Source DB:  PubMed          Journal:  AJR Am J Roentgenol        ISSN: 0361-803X            Impact factor:   3.959


  6 in total

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Authors:  Adam Rao; Emily Huynh; Thomas J Royston; Aaron Kornblith; Shuvo Roy
Journal:  IEEE Rev Biomed Eng       Date:  2018-10-29

2.  Left and right lung asynchrony as a physiological indicator for unilateral bronchial obstruction in interventional bronchoscopy.

Authors:  Masamichi Mineshita; Hirotaka Kida; Hiroki Nishine; Hiroshi Handa; Takeo Inoue; Teruomi Miyazawa
Journal:  PLoS One       Date:  2014-08-18       Impact factor: 3.240

Review 3.  Body Acoustics for the Non-Invasive Diagnosis of Medical Conditions.

Authors:  Jadyn Cook; Muneebah Umar; Fardin Khalili; Amirtahà Taebi
Journal:  Bioengineering (Basel)       Date:  2022-04-01

4.  Changes in regional distribution of lung sounds as a function of positive end-expiratory pressure.

Authors:  Shaul Lev; Yael A Glickman; Ilya Kagan; David Dahan; Jonathan Cohen; Milana Grinev; Maury Shapiro; Pierre Singer
Journal:  Crit Care       Date:  2009-05-10       Impact factor: 9.097

5.  Evaluation of Vibration Response Imaging (VRI) Technique and Difference in VRI Indices Among Non-Smokers, Active Smokers and Passive Smokers.

Authors:  Hongying Jiang; Jichao Chen; Jinying Cao; Lan Mu; Zhenyu Hu; Jian He
Journal:  Med Sci Monit       Date:  2015-07-27

6.  Assessment of regional ventilation distribution: comparison of vibration response imaging (VRI) with electrical impedance tomography (EIT).

Authors:  Chang Shi; Stefan Boehme; Alexander H Bentley; Erik K Hartmann; Klaus U Klein; Marc Bodenstein; James E Baumgardner; Matthias David; Roman Ullrich; Klaus Markstaller
Journal:  PLoS One       Date:  2014-01-27       Impact factor: 3.240

  6 in total

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