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Skin hydration dynamics investigated by electrical impedance techniques in vivo and in vitro.
Malmö University, Biofilms Research Center for Biointerfaces. Malmö University, Faculty of Health and Society (HS), Department of Biomedical Science (BMV).ORCID iD: 0000-0001-8720-3705
Malmö University, Biofilms Research Center for Biointerfaces. Malmö University, Faculty of Health and Society (HS), Department of Biomedical Science (BMV).ORCID iD: 0000-0003-0304-7528
SciBase AB, Sundbyberg, Sweden.
Department of Biomedical and Clinical Sciences, Linköping University, Linköping, Sweden.
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2020 (English)In: Scientific Reports, E-ISSN 2045-2322, Vol. 10, no 1, article id 17218Article in journal (Refereed) Published
Abstract [en]

Skin is easily accessible for transdermal drug delivery and also attractive for biomarker sampling. These applications are strongly influenced by hydration where elevated hydration generally leads to increased skin permeability. Thus, favorable transdermal delivery and extraction conditions can be easily obtained by exploiting elevated skin hydration. Here, we provide a detailed in vivo and in vitro investigation of the skin hydration dynamics using three techniques based on electrical impedance spectroscopy. Good correlation between in vivo and in vitro results is demonstrated, which implies that simple but realistic in vitro models can be used for further studies related to skin hydration (e.g., cosmetic testing). Importantly, the results show that hydration proceeds in two stages. Firstly, hydration between 5 and 10 min results in a drastic skin impedance change, which is interpreted as filling of superficial voids in skin with conducting electrolyte solution. Secondly, a subtle impedance change is observed over time, which is interpreted as leveling of the water gradient across skin leading to structural relaxation/changes of the macromolecular skin barrier components. With respect to transdermal drug delivery and extraction of biomarkers; 1 h of hydration is suggested to result in beneficial and stable conditions in terms of high skin permeability and extraction efficiency.

Place, publisher, year, edition, pages
Springer, 2020. Vol. 10, no 1, article id 17218
National Category
Pharmaceutical Sciences
Identifiers
URN: urn:nbn:se:mau:diva-18777DOI: 10.1038/s41598-020-73684-yISI: 000582678700012PubMedID: 33057021Scopus ID: 2-s2.0-85092579040OAI: oai:DiVA.org:mau-18777DiVA, id: diva2:1478882
Available from: 2020-10-23 Created: 2020-10-23 Last updated: 2024-06-17Bibliographically approved
In thesis
1. Biophysical aspects of the skin barrier: towards increased non-invasive extraction and optimized biomarker sampling
Open this publication in new window or tab >>Biophysical aspects of the skin barrier: towards increased non-invasive extraction and optimized biomarker sampling
2021 (English)Doctoral thesis, comprehensive summary (Other academic)
Abstract [en]

The skin provides a link to the body’s health via its rich variety of high and low molecular weight biomarkers, reflecting both systemic diseases (e.g., cancer, diabetes) and local skin disorders (e.g., atopic dermatitis, psoriasis). Non-invasive monitoring of disease-specific biomarkers on the skin surface provides a highly attractive diagnostic procedure as alternative to current practices that normally are biopsy-based and invasive. In order to succeed with non-invasive topical diagnostics, the sampling of biomarkers should proceed in a highly accurate and reproducible manner. Further, a major challenge to achieve this goal is to overcome the outermost skin layer (the stratum corneum, SC) that acts as a remarkable permeability barrier, restricting molecular diffusion in and out of our body, including diffusion of potential biomarkers.

The primary aim of this thesis is to achieve an optimized and reproducible noninvasive sampling of endogenous biomarkers from the skin surface. Here, water plays a crucial role as the hydration degree of the SC has a strong influence on the diffusion of molecules across the skin barrier. In particular, fully hydrated skin is expected to be optimal for increased diffusion of biomarkers in the skin tissue, favoring efficient extraction.

Considering this, to develop a suitable sampling matrix for non-invasive extraction, it is very important to optimize the matrix so that it has a good ability to hydrate the skin as well as a high capacity to absorb the biomarker and finally allow for analytic quantification. The main questions in this thesis are as follows. (i) How long time does it take to reach a stable level of skin hydration? (ii) How do the intrinsic properties of sampling matrices influence the extraction of biomarkers? (iii) What are the effects of the sampling matrices on the biophysical properties of the skin barrier?(iv) Are hydrogels and bicontinuous cubic liquid crystals suitable matrices for noninvasive sampling of endogenous biomarkers? (v) Is reverse iontophoresis a suitable technique to further enhance the extraction endogenous biomarkers?

The hydration of the skin is investigated in vivo and in vitro in order to estimate the time to reach stable hydration level. We show that skin hydration proceeds in two distinct stages with different rates of change of the electrical impedance response and conclude that stable conditions are obtained approximately after 60 min of hydration. We explore the novel approach of using lipid-based bicontinuous cubic liquid crystalline phases as matrices for non-invasive sampling of biomarkers in vivo and invitro and compare them with hydrogel-based materials.

From these investigations, we conclude that both kind of materials show promising capacity of hydrating the skin and collect skin-derived biomarkers. However, the cubic phases are shown to havea bout twice as high extraction capacity, as compared to hydrogels. Further, we show that reverse iontophoresis enhances extraction of a potential cancer biomarker in vitro by at least an order of magnitude, as compared to passive diffusion. Taken together, the results obtained in this thesis can serve as a point-of-departure for future applications based on non-invasive sampling of disease-related biomarkers from skinin clinical diagnostics.

Place, publisher, year, edition, pages
Malmö: Malmö universitet, 2021. p. 70
Series
Malmö University Health and Society Dissertations, ISSN 1653-5383 ; 2021:10
National Category
Medical Biotechnology
Identifiers
urn:nbn:se:mau:diva-48311 (URN)10.24834/isbn.9789178772254 (DOI)9789178772247 (ISBN)9789178772254 (ISBN)
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Note

Paper II published in dissertation as manuscript.

Paper IV published in dissertation as manuscript with title Non-invasive, Topical Sampling of Potential Skin Cancer Biomarkers,Kynurenine and Tryptophan: Study on Healthy Volunteer

Available from: 2021-12-21 Created: 2021-12-21 Last updated: 2023-10-19Bibliographically approved

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Morin, MaximRuzgas, TautgirdasEngblom, JohanBjörklund, Sebastian

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