Reepithelialization in focus: Non-invasive monitoring of epidermal wound healing in vitro

被引:21
作者
Kiesewetter, Lisa [1 ,2 ]
Littau, Laura [1 ]
Walles, Heike [1 ,3 ]
Boccaccini, Aldo R. [4 ]
Groeber-Becker, Florian [1 ]
机构
[1] Fraunhofer Inst Silicate Res ISC, Translat Ctr Regenerat Therapies TLZ RT, Neunerpl 2, D-97082 Wurzburg, Germany
[2] Univ Hosp Wurzburg, Dept Tissue Engn & Regenerat Med TERM, D-97070 Wurzburg, Germany
[3] Otto von Guericke Univ, Core Facil Tissue Engn, Bldg 28,Pfalzerstr 2, D-39106 Magdeburg, Germany
[4] Univ Erlangen Nurnberg, Dept Mat Sci & Engn, Inst Biomat, Cauerstr 6, D-91058 Erlangen, Germany
关键词
Impedance spectroscopy; Reconstructed human epidermis; Epidermal wound healing; Reepithelialization; Transepithelial electrical resistance; IMPEDANCE SPECTROSCOPY; SKIN; REEPITHILIALIZATION; MODEL; ONSET;
D O I
10.1016/j.bios.2019.111555
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Up to today, in vivo studies are the gold standard for testing of new therapeutics for cutaneous wound healing. Alternative in vitro studies are mostly limited to two-dimensional cell cultures and thus only poorly reflect the complex physiological wound situation. Here we present a new three-dimensional wound model based on a reconstructed human epidermis (RHE). We introduce impedance spectroscopy as a time-resolved test method to determine the efficacy of wound healing non-destructively by focusing on the barrier function of the RHE as a main feature of intact skin. We assessed the skin barrier quantitatively and qualitatively by calculating the transepithelial electrical resistance (TEER), by fitting an equivalent circuit and by analyzing the single characteristic frequency. Upon wounding using a 2 mm biopsy punch, the impedance dropped significantly to 3.5% of the initial value. Impedance spectroscopy thereby proved to be a sensitive tool to distinguish between wounds of different sizes. The glucose and lactate concentration in the medium revealed an acute stress reaction of the wounded RHE (wRHE) in the first days after wounding. During monitoring of reepithelialization over fourteen days, the barrier fully recovered. Microscopy and histology images correlate well with these findings, revealing an active wound closure mostly completed by day seven after wounding. These wounded epidermal models can now be applied in therapeutic screenings and with the help of rapid screening by impedance spectroscopy, expensive and time-consuming imaging and histological methods as well as the use of animal models can be reduced.
引用
收藏
页数:9
相关论文
共 50 条
[31]   Non-invasive, 3D printed, colourimetric, early wound-infection indicator [J].
Yusufu, Dilidaer ;
Magee, Erin ;
Gilmore, Brendan ;
Mills, Andrew .
CHEMICAL COMMUNICATIONS, 2022, 58 (03) :439-442
[32]   Non-invasive assessment of healing of bacteria infected and uninfected wounds using optical coherence tomography [J].
Sahu, K. ;
Verma, Y. ;
Sharma, M. ;
Rao, K. D. ;
Gupta, P. K. .
SKIN RESEARCH AND TECHNOLOGY, 2010, 16 (04) :428-437
[33]   Sulfur mustard cutaneous injury characterization based on SKH-1 mouse model: relevance of non-invasive methods in terms of wound healing process analyses [J].
Clery-Barraud, Cecile ;
Nguon, Nina ;
Vallet, Virginie ;
Sentenac, Catherine ;
Four, Elise ;
Arlaud, Carine ;
Coulon, David ;
Boudry, Isabelle .
SKIN RESEARCH AND TECHNOLOGY, 2013, 19 (01) :E146-E156
[34]   Epidermal Micrografts Produced via an Automated and Minimally Invasive Tool Form at the Dermal/Epidermal Junction and Contain Proliferative Cells That Secrete Wound Healing Growth Factors [J].
Osborne, Sandra N. ;
Schmidt, Marisa A. ;
Derrick, Kathleen ;
Harper, John R. .
ADVANCES IN SKIN & WOUND CARE, 2015, 28 (09) :397-405
[35]   UV fluorescence excitation spectroscopy as a non-invasive predictor of epidermal proliferation and clinical performance of cosmetic formulations [J].
Maidhof, Robert ;
Liebel, Frank ;
Hwang, Cheng ;
Ruvolo, Eduardo ;
Lyga, John .
OPTICAL TOMOGRAPHY AND SPECTROSCOPY OF TISSUE XII, 2017, 10059
[36]   A comprehensive review on electromagnetic wave based non-invasive glucose monitoring in microwave frequencies [J].
Kandwal, Abhishek ;
Sharma, Yogeshwar Dutt ;
Jasrotia, Rohit ;
Kit, Chan Choon ;
Lakshmaiya, Natrayan ;
Sillanpaa, Mika ;
Liu, Louis W. Y. ;
Igbe, Tobore ;
Kumari, Asha ;
Sharma, Rahul ;
Kumar, Suresh ;
Sungoum, Chongkol .
HELIYON, 2024, 10 (18)
[37]   Non-Invasive Monitoring of Stromal Biophysics with Targeted Depletion of Hyaluronan in Pancreatic Ductal Adenocarcinoma [J].
Maloney, Ezekiel ;
DuFort, Christopher C. ;
Provenzano, Paolo P. ;
Farr, Navid ;
Carlson, Markus A. ;
Vohra, Ravneet ;
Park, Joshua ;
Hingorani, Sunil R. ;
Lee, Donghoon .
CANCERS, 2019, 11 (06)
[38]   Long non-coding RNA HOTAIR promotes burn wound healing by regulating epidermal stem cells [J].
Shi, Yan ;
Yang, Ronghua ;
Tu, Longxiang ;
Liu, Dewu .
MOLECULAR MEDICINE REPORTS, 2020, 22 (03) :1811-1820
[39]   External ears for non-invasive and stable monitoring of volatile organic compounds in human blood [J].
Toma, Koji ;
Suzuki, Shota ;
Arakawa, Takahiro ;
Iwasaki, Yasuhiko ;
Mitsubayashi, Kohji .
SCIENTIFIC REPORTS, 2021, 11 (01)
[40]   Novel NF-κB reporter mouse for the non-invasive monitoring of inflammatory diseases [J].
Park, Se Yong ;
Kim, Min Woo ;
Kang, Ju-Hee ;
Jung, Hyun Jin ;
Hwang, Jung Ho ;
Yang, Soo Jung ;
Woo, Jong Kyu ;
Jeon, Yoon ;
Lee, Ho ;
Yoon, Yeo Sung ;
Seong, Je Kyung ;
Oh, Seung Hyun .
SCIENTIFIC REPORTS, 2023, 13 (01)