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Protective Effect of Chitin Urocanate Nanofibers against Ultraviolet Radiation

Urocanic acid is a major ultraviolet (UV)-absorbing chromophore. Chitins are highly crystalline structures that are found predominantly in crustacean shells. Alpha-chitin consists of microfibers that contain nanofibrils embedded in a protein matrix. Acid hydrolysis is a common method used to prepare...

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Autores principales: Ito, Ikuko, Yoneda, Toshikazu, Omura, Yoshihiko, Osaki, Tomohiro, Ifuku, Shinsuke, Saimoto, Hiroyuki, Azuma, Kazuo, Imagawa, Tomohiro, Tsuka, Takeshi, Murahata, Yusuke, Ito, Norihiko, Okamoto, Yoshiharu, Minami, Saburo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4699249/
https://www.ncbi.nlm.nih.gov/pubmed/26703629
http://dx.doi.org/10.3390/md13127076
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author Ito, Ikuko
Yoneda, Toshikazu
Omura, Yoshihiko
Osaki, Tomohiro
Ifuku, Shinsuke
Saimoto, Hiroyuki
Azuma, Kazuo
Imagawa, Tomohiro
Tsuka, Takeshi
Murahata, Yusuke
Ito, Norihiko
Okamoto, Yoshiharu
Minami, Saburo
author_facet Ito, Ikuko
Yoneda, Toshikazu
Omura, Yoshihiko
Osaki, Tomohiro
Ifuku, Shinsuke
Saimoto, Hiroyuki
Azuma, Kazuo
Imagawa, Tomohiro
Tsuka, Takeshi
Murahata, Yusuke
Ito, Norihiko
Okamoto, Yoshiharu
Minami, Saburo
author_sort Ito, Ikuko
collection PubMed
description Urocanic acid is a major ultraviolet (UV)-absorbing chromophore. Chitins are highly crystalline structures that are found predominantly in crustacean shells. Alpha-chitin consists of microfibers that contain nanofibrils embedded in a protein matrix. Acid hydrolysis is a common method used to prepare chitin nanofibrils (NFs). We typically obtain NFs by hydrolyzing chitin with acetic acid. However, in the present study, we used urocanic acid to prepare urocanic acid chitin NFs (UNFs) and examined its protective effect against UVB radiation. Hos: HR-1 mice coated with UNFs were UVB irradiated (302 nm, 150 mJ/cm(2)), and these mice showed markedly lower UVB radiation-induced cutaneous erythema than the control. Additionally, sunburn cells were rarely detected in the epidermis of UNFs-coated mice after UVB irradiation. Although the difference was not as significant as UNFs, the number of sunburn cells in mice treated with acetic acid chitin nanofibrils (ANFs) tended to be lower than in control mice. These results demonstrate that ANFs have a protective effect against UVB and suggest that the anti-inflammatory and antioxidant effects of NFs influence the protective effect of ANFs against UVB radiation. The combination of NFs with other substances that possess UV-protective effects, such as urocanic acid, may provide an enhanced protective effect against UVB radiation.
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spelling pubmed-46992492016-01-21 Protective Effect of Chitin Urocanate Nanofibers against Ultraviolet Radiation Ito, Ikuko Yoneda, Toshikazu Omura, Yoshihiko Osaki, Tomohiro Ifuku, Shinsuke Saimoto, Hiroyuki Azuma, Kazuo Imagawa, Tomohiro Tsuka, Takeshi Murahata, Yusuke Ito, Norihiko Okamoto, Yoshiharu Minami, Saburo Mar Drugs Article Urocanic acid is a major ultraviolet (UV)-absorbing chromophore. Chitins are highly crystalline structures that are found predominantly in crustacean shells. Alpha-chitin consists of microfibers that contain nanofibrils embedded in a protein matrix. Acid hydrolysis is a common method used to prepare chitin nanofibrils (NFs). We typically obtain NFs by hydrolyzing chitin with acetic acid. However, in the present study, we used urocanic acid to prepare urocanic acid chitin NFs (UNFs) and examined its protective effect against UVB radiation. Hos: HR-1 mice coated with UNFs were UVB irradiated (302 nm, 150 mJ/cm(2)), and these mice showed markedly lower UVB radiation-induced cutaneous erythema than the control. Additionally, sunburn cells were rarely detected in the epidermis of UNFs-coated mice after UVB irradiation. Although the difference was not as significant as UNFs, the number of sunburn cells in mice treated with acetic acid chitin nanofibrils (ANFs) tended to be lower than in control mice. These results demonstrate that ANFs have a protective effect against UVB and suggest that the anti-inflammatory and antioxidant effects of NFs influence the protective effect of ANFs against UVB radiation. The combination of NFs with other substances that possess UV-protective effects, such as urocanic acid, may provide an enhanced protective effect against UVB radiation. MDPI 2015-12-19 /pmc/articles/PMC4699249/ /pubmed/26703629 http://dx.doi.org/10.3390/md13127076 Text en © 2015 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons by Attribution (CC-BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ito, Ikuko
Yoneda, Toshikazu
Omura, Yoshihiko
Osaki, Tomohiro
Ifuku, Shinsuke
Saimoto, Hiroyuki
Azuma, Kazuo
Imagawa, Tomohiro
Tsuka, Takeshi
Murahata, Yusuke
Ito, Norihiko
Okamoto, Yoshiharu
Minami, Saburo
Protective Effect of Chitin Urocanate Nanofibers against Ultraviolet Radiation
title Protective Effect of Chitin Urocanate Nanofibers against Ultraviolet Radiation
title_full Protective Effect of Chitin Urocanate Nanofibers against Ultraviolet Radiation
title_fullStr Protective Effect of Chitin Urocanate Nanofibers against Ultraviolet Radiation
title_full_unstemmed Protective Effect of Chitin Urocanate Nanofibers against Ultraviolet Radiation
title_short Protective Effect of Chitin Urocanate Nanofibers against Ultraviolet Radiation
title_sort protective effect of chitin urocanate nanofibers against ultraviolet radiation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4699249/
https://www.ncbi.nlm.nih.gov/pubmed/26703629
http://dx.doi.org/10.3390/md13127076
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