DocumentCode :
1398174
Title :
Assessment of the Pathophysiology of Injured Tissue With an In Vivo Electrical Injury Model
Author :
Nguyen, Thu T A ; Shupp, Jeffrey W. ; Moffatt, Lauren T. ; Jordan, Marion H. ; Leto, Ellen J. ; Ramella-Roman, Jessica C.
Author_Institution :
Dept. of Electr. Eng., Catholic Univ. of America, Washington, DC, USA
Volume :
18
Issue :
4
fYear :
2012
Firstpage :
1403
Lastpage :
1411
Abstract :
Tissue destruction from electrical injury is devastating and hard to treat. Unfortunately, the pathophysiology of electrical trauma is still not well understood. We have developed a suite of tools aimed at investigating damage due to high voltage shock on the skin using a rat model. Electrical injuries were created with a custom made high-tension shock system and a spectroscopic system, based on spatial frequency domain imaging, was used to determine optical properties of electrically injured tissues. The extrapolated values of absorption and scattering coefficients at six different wavelengths were then utilized to monitor parameters of interest such as tissue oxygen saturation, methemoglobin volume fraction, and hemoglobin volume fraction at four time intervals post injury. An FLIR thermal camera was used to record skin temperature during the electrical shock. Finally, a laser Doppler imaging apparatus was used to assess tissue perfusion. In this paper, the results of experiments conducted on a rat model and discussions on the systemic changes in tissue optical properties before and after electrical shock are presented. A reduction in tissue oxygen saturation postinjury is observed as well as an increase in methemoglobin. Tissue perfusion increases immediately after the delivery of the electrical shock.
Keywords :
absorption coefficients; biomedical optical imaging; cellular biophysics; diseases; electric shocks; extrapolation; infrared spectra; injuries; laser applications in medicine; light scattering; molecular biophysics; patient monitoring; proteins; skin; FLIR thermal camera; absorption coefficients; electrical trauma; electrically injured tissues; hemoglobin volume fraction; high voltage shock; high-tension shock system; in vivo electrical injury model; laser Doppler imaging apparatus; methemoglobin volume fraction; optical properties; pathophysiology assessment; rat model; scattering coefficients; skin; skin temperature; spatial frequency domain imaging; spectroscopic system; tissue destruction; tissue optical properties; tissue oxygen saturation postinjury; tissue perfusion; Absorption; Electric shock; Injuries; Optical scattering; Phantoms; Rats; Skin; Electrical burns; laser Doppler imaging (LDI); methemoglobin; spatial frequency domain imaging (SFDI); thermal response;
fLanguage :
English
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
1077-260X
Type :
jour
DOI :
10.1109/JSTQE.2011.2179525
Filename :
6104094
Link To Document :
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