Cargando…

Three-Dimensional Skin Tissue Printing with Human Skin Cell Lines and Mouse Skin-Derived Epidermal and Dermal Cells

Since the skin covers most surfaces of the body, it is susceptible to damage, which can be fatal depending on the degree of injury to the skin because it defends against external attack and protects internal structures. Various types of artificial skin are being studied for transplantation to repair...

Descripción completa

Detalles Bibliográficos
Autores principales: Jin, Soojung, Oh, You Na, Son, Yu Ri, Kwon, Boguen, Park, Jung-ha, Gang, Min jeong, Kim, Byung Woo, Kwon, Hyun Ju
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Korean Society for Microbiology and Biotechnology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9628848/
https://www.ncbi.nlm.nih.gov/pubmed/34949744
http://dx.doi.org/10.4014/jmb.2111.11042
_version_ 1784823276108775424
author Jin, Soojung
Oh, You Na
Son, Yu Ri
Kwon, Boguen
Park, Jung-ha
Gang, Min jeong
Kim, Byung Woo
Kwon, Hyun Ju
author_facet Jin, Soojung
Oh, You Na
Son, Yu Ri
Kwon, Boguen
Park, Jung-ha
Gang, Min jeong
Kim, Byung Woo
Kwon, Hyun Ju
author_sort Jin, Soojung
collection PubMed
description Since the skin covers most surfaces of the body, it is susceptible to damage, which can be fatal depending on the degree of injury to the skin because it defends against external attack and protects internal structures. Various types of artificial skin are being studied for transplantation to repair damaged skin, and recently, the production of replaceable skin using three-dimensional (3D) bioprinting technology has also been investigated. In this study, skin tissue was produced using a 3D bioprinter with human skin cell lines and cells extracted from mouse skin, and the printing conditions were optimized. Gelatin was used as a bioink, and fibrinogen and alginate were used for tissue hardening after printing. Printed skin tissue maintained a survival rate of 90% or more when cultured for 14 days. Culture conditions were established using 8 mM calcium chloride treatment and the skin tissue was exposed to air to optimize epidermal cell differentiation. The skin tissue was cultured for 14 days after differentiation induction by this optimized culture method, and immunofluorescent staining was performed using epidermal cell differentiation markers to investigate whether the epidermal cells had differentiated. After differentiation, loricrin, which is normally found in terminally differentiated epidermal cells, was observed in the cells at the tip of the epidermal layer, and cytokeratin 14 was expressed in the lower cells of the epidermis layer. Collectively, this study may provide optimized conditions for bioprinting and keratinization for three-dimensional skin production.
format Online
Article
Text
id pubmed-9628848
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher The Korean Society for Microbiology and Biotechnology
record_format MEDLINE/PubMed
spelling pubmed-96288482022-12-13 Three-Dimensional Skin Tissue Printing with Human Skin Cell Lines and Mouse Skin-Derived Epidermal and Dermal Cells Jin, Soojung Oh, You Na Son, Yu Ri Kwon, Boguen Park, Jung-ha Gang, Min jeong Kim, Byung Woo Kwon, Hyun Ju J Microbiol Biotechnol Research article Since the skin covers most surfaces of the body, it is susceptible to damage, which can be fatal depending on the degree of injury to the skin because it defends against external attack and protects internal structures. Various types of artificial skin are being studied for transplantation to repair damaged skin, and recently, the production of replaceable skin using three-dimensional (3D) bioprinting technology has also been investigated. In this study, skin tissue was produced using a 3D bioprinter with human skin cell lines and cells extracted from mouse skin, and the printing conditions were optimized. Gelatin was used as a bioink, and fibrinogen and alginate were used for tissue hardening after printing. Printed skin tissue maintained a survival rate of 90% or more when cultured for 14 days. Culture conditions were established using 8 mM calcium chloride treatment and the skin tissue was exposed to air to optimize epidermal cell differentiation. The skin tissue was cultured for 14 days after differentiation induction by this optimized culture method, and immunofluorescent staining was performed using epidermal cell differentiation markers to investigate whether the epidermal cells had differentiated. After differentiation, loricrin, which is normally found in terminally differentiated epidermal cells, was observed in the cells at the tip of the epidermal layer, and cytokeratin 14 was expressed in the lower cells of the epidermis layer. Collectively, this study may provide optimized conditions for bioprinting and keratinization for three-dimensional skin production. The Korean Society for Microbiology and Biotechnology 2022-02-28 2021-12-15 /pmc/articles/PMC9628848/ /pubmed/34949744 http://dx.doi.org/10.4014/jmb.2111.11042 Text en Copyright © 2022 by the authors. Licensee KMB. https://creativecommons.org/licenses/by/4.0/This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research article
Jin, Soojung
Oh, You Na
Son, Yu Ri
Kwon, Boguen
Park, Jung-ha
Gang, Min jeong
Kim, Byung Woo
Kwon, Hyun Ju
Three-Dimensional Skin Tissue Printing with Human Skin Cell Lines and Mouse Skin-Derived Epidermal and Dermal Cells
title Three-Dimensional Skin Tissue Printing with Human Skin Cell Lines and Mouse Skin-Derived Epidermal and Dermal Cells
title_full Three-Dimensional Skin Tissue Printing with Human Skin Cell Lines and Mouse Skin-Derived Epidermal and Dermal Cells
title_fullStr Three-Dimensional Skin Tissue Printing with Human Skin Cell Lines and Mouse Skin-Derived Epidermal and Dermal Cells
title_full_unstemmed Three-Dimensional Skin Tissue Printing with Human Skin Cell Lines and Mouse Skin-Derived Epidermal and Dermal Cells
title_short Three-Dimensional Skin Tissue Printing with Human Skin Cell Lines and Mouse Skin-Derived Epidermal and Dermal Cells
title_sort three-dimensional skin tissue printing with human skin cell lines and mouse skin-derived epidermal and dermal cells
topic Research article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9628848/
https://www.ncbi.nlm.nih.gov/pubmed/34949744
http://dx.doi.org/10.4014/jmb.2111.11042
work_keys_str_mv AT jinsoojung threedimensionalskintissueprintingwithhumanskincelllinesandmouseskinderivedepidermalanddermalcells
AT ohyouna threedimensionalskintissueprintingwithhumanskincelllinesandmouseskinderivedepidermalanddermalcells
AT sonyuri threedimensionalskintissueprintingwithhumanskincelllinesandmouseskinderivedepidermalanddermalcells
AT kwonboguen threedimensionalskintissueprintingwithhumanskincelllinesandmouseskinderivedepidermalanddermalcells
AT parkjungha threedimensionalskintissueprintingwithhumanskincelllinesandmouseskinderivedepidermalanddermalcells
AT gangminjeong threedimensionalskintissueprintingwithhumanskincelllinesandmouseskinderivedepidermalanddermalcells
AT kimbyungwoo threedimensionalskintissueprintingwithhumanskincelllinesandmouseskinderivedepidermalanddermalcells
AT kwonhyunju threedimensionalskintissueprintingwithhumanskincelllinesandmouseskinderivedepidermalanddermalcells