Prediction of Steam Burns Severity using Raman Spectroscopy on ex vivo Porcine Skin
Abstract Skin burns due to accidental exposure to hot steam have often been reported to be more severe than the ones occurring from dry heat. While skin burns due to flames or radiant heat have been thoroughly characterized, the mechanisms leading to steam burns are not well understood and a conundr...
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2018-05-01
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doaj-d962a4a4c8784eec8f5faf171116a9d22020-12-08T04:35:21ZengNature Publishing GroupScientific Reports2045-23222018-05-018111110.1038/s41598-018-24647-xPrediction of Steam Burns Severity using Raman Spectroscopy on ex vivo Porcine SkinLina Zhai0Christian Adlhart1Fabrizio Spano2Riccardo Innocenti Malini3Agnieszka K. Piątek4Jun Li5René M. Rossi6Protective Clothing Research Center, College of Fashion and Design, Donghua UniversityInstitute of Chemistry and Biotechnology, Zurich University of Applied Sciences, ZHAWEmpa, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for Biomimetic Membranes and TextilesEmpa, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for Biomimetic Membranes and TextilesEmpa, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for Biomimetic Membranes and TextilesProtective Clothing Research Center, College of Fashion and Design, Donghua UniversityEmpa, Swiss Federal Laboratories for Materials Science and Technology, Laboratory for Biomimetic Membranes and TextilesAbstract Skin burns due to accidental exposure to hot steam have often been reported to be more severe than the ones occurring from dry heat. While skin burns due to flames or radiant heat have been thoroughly characterized, the mechanisms leading to steam burns are not well understood and a conundrum still exists: can second degree burns occur without destruction of the epidermis, i.e. even before first degree burns are detected? Skin permeability is dependent both on temperature and on the kinetic energy of incoming water molecules. To investigate the mechanism underlying the injuries related to steam exposure, we used porcine skin as an ex vivo model. This model was exposed to either steam or dry heat before measuring the skin hydration via confocal Raman microspectroscopy. The results show that during the first minute of exposure to steam, the water content in both the epidermis and dermis increases. By analyzing different mechanisms of steam diffusion through the multiple skin layers, as well as the moisture-assisted bio-heat transfer, we provide a novel model explaining why steam burns can be more severe, and why steam can penetrate deeper and much faster than an equivalent dry heat.https://doi.org/10.1038/s41598-018-24647-x |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Lina Zhai Christian Adlhart Fabrizio Spano Riccardo Innocenti Malini Agnieszka K. Piątek Jun Li René M. Rossi |
spellingShingle |
Lina Zhai Christian Adlhart Fabrizio Spano Riccardo Innocenti Malini Agnieszka K. Piątek Jun Li René M. Rossi Prediction of Steam Burns Severity using Raman Spectroscopy on ex vivo Porcine Skin Scientific Reports |
author_facet |
Lina Zhai Christian Adlhart Fabrizio Spano Riccardo Innocenti Malini Agnieszka K. Piątek Jun Li René M. Rossi |
author_sort |
Lina Zhai |
title |
Prediction of Steam Burns Severity using Raman Spectroscopy on ex vivo Porcine Skin |
title_short |
Prediction of Steam Burns Severity using Raman Spectroscopy on ex vivo Porcine Skin |
title_full |
Prediction of Steam Burns Severity using Raman Spectroscopy on ex vivo Porcine Skin |
title_fullStr |
Prediction of Steam Burns Severity using Raman Spectroscopy on ex vivo Porcine Skin |
title_full_unstemmed |
Prediction of Steam Burns Severity using Raman Spectroscopy on ex vivo Porcine Skin |
title_sort |
prediction of steam burns severity using raman spectroscopy on ex vivo porcine skin |
publisher |
Nature Publishing Group |
series |
Scientific Reports |
issn |
2045-2322 |
publishDate |
2018-05-01 |
description |
Abstract Skin burns due to accidental exposure to hot steam have often been reported to be more severe than the ones occurring from dry heat. While skin burns due to flames or radiant heat have been thoroughly characterized, the mechanisms leading to steam burns are not well understood and a conundrum still exists: can second degree burns occur without destruction of the epidermis, i.e. even before first degree burns are detected? Skin permeability is dependent both on temperature and on the kinetic energy of incoming water molecules. To investigate the mechanism underlying the injuries related to steam exposure, we used porcine skin as an ex vivo model. This model was exposed to either steam or dry heat before measuring the skin hydration via confocal Raman microspectroscopy. The results show that during the first minute of exposure to steam, the water content in both the epidermis and dermis increases. By analyzing different mechanisms of steam diffusion through the multiple skin layers, as well as the moisture-assisted bio-heat transfer, we provide a novel model explaining why steam burns can be more severe, and why steam can penetrate deeper and much faster than an equivalent dry heat. |
url |
https://doi.org/10.1038/s41598-018-24647-x |
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