A quantitative comparison of devices for in vivo biomechanical characterization of human skin
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Published:2023-07-17
Issue:1
Volume:5
Page:
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ISSN:2524-5600
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Container-title:Mechanics of Soft Materials
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language:en
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Short-container-title:Mech Soft Mater
Author:
Junker Håvar J.ORCID, Thumm Bettina, Halvachizadeh Sascha, Mazza Edoardo
Abstract
AbstractNon-invasive skin characterization devices are emerging as a valuable tool in clinical skin research. In recent years, the range of available experimental techniques and methods used to determine the biomechanical properties of skin has increased considerably. Although a substantial amount of work has been devoted to assessing the working principle of macroscopic skin characterization devices individually, a rationalization and comparison between them is still lacking. This motivated the present study, which aimed to characterize and compare three commonly used working principles: suction, dynamic shear loading, and indentation. A synthetic model system with tunable mechanical properties was used to assess the three devices, and the results rationalized based on corresponding finite element models. In vivo measurements were performed on healthy volunteers to investigate the capability of differentiating the biomechanical properties of skin at different body locations, and to assess the intra- and inter-rater reliability of each device. The present comparative analysis indicates that the analyzed functional principles perceive the stiffness of human skin differently, with relevant implications for the interpretation of the respective measurement results.
Funder
Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung Swiss Federal Institute of Technology Zurich
Publisher
Springer Science and Business Media LLC
Reference30 articles.
1. Joodaki, H., Panzer, M. B.: Skin mechanical properties and modeling: a review. Proc. Institut. Mech. Eng. Part H J. Eng. Med. 232, 323–343 (2018). https://doi.org/10.1177/0954411918759801 2. Gurtner, G.C., Werner, S., Barrandon, Y., Longaker, M.T.: Wound repair and regeneration. Nature 453, 314–321 (2008). https://doi.org/10.1038/nature07039 3. Aragona, M., Sifrim, A., Malfait, M., Song, Y., Herck, J.V., Dekoninck, S., Gargouri, S., Lapouge, G., Swedlund, B., Dubois, C., Baatsen, P., Vints, K., Han, S., Tissir, F., Voet, T., Simons, B.D., Blanpain, C.: Mechanisms of stretch-mediated skin expansion at single-cell resolution. Nature 584. https://doi.org/10.1038/s41586-020-2555-7 (2020) 4. Dupont, S., Morsut, L., Aragona, M., Enzo, E., Giulitti, S., Cordenonsi, M., Zanconato, F., Digabel, J.L., Forcato, Bicciato, S., Elvassore, N., Piccolo, S.: Role of YAP/TAZ in mechanotransduction. Nature 474. https://doi.org/10.1038/nature10137 (2011) 5. Chaudhuri, O., Cooper-White, J., Janmey, P.A., Mooney, D.J., Shenoy, V.B.: Effects of extracellular matrix viscoelasticity on cellular behaviour. Nature 584. https://doi.org/10.1038/s41586-020-2612-2 (2020)
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