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Effects of Surface-Deacetylated Chitin Nanofibers in an Experimental Model of Hypercholesterolemia

This study evaluated the effects of oral administration of surface-deacetylated chitin nanofibers (SDACNFs) on hypercholesterolemia using an experimental model. All rats were fed a high cholesterol diet with 1% w/w cholesterol and 0.5% w/w cholic acid for 28 days. Rats were divided equally into four...

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Autores principales: Azuma, Kazuo, Nagae, Tomone, Nagai, Takeshi, Izawa, Hironori, Morimoto, Minoru, Murahata, Yusuke, Osaki, Tomohiro, Tsuka, Takeshi, Imagawa, Tomohiro, Ito, Norihiko, Okamoto, Yoshiharu, Saimoto, Hiroyuki, Ifuku, Shinsuke
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4581201/
https://www.ncbi.nlm.nih.gov/pubmed/26263969
http://dx.doi.org/10.3390/ijms160817445
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author Azuma, Kazuo
Nagae, Tomone
Nagai, Takeshi
Izawa, Hironori
Morimoto, Minoru
Murahata, Yusuke
Osaki, Tomohiro
Tsuka, Takeshi
Imagawa, Tomohiro
Ito, Norihiko
Okamoto, Yoshiharu
Saimoto, Hiroyuki
Ifuku, Shinsuke
author_facet Azuma, Kazuo
Nagae, Tomone
Nagai, Takeshi
Izawa, Hironori
Morimoto, Minoru
Murahata, Yusuke
Osaki, Tomohiro
Tsuka, Takeshi
Imagawa, Tomohiro
Ito, Norihiko
Okamoto, Yoshiharu
Saimoto, Hiroyuki
Ifuku, Shinsuke
author_sort Azuma, Kazuo
collection PubMed
description This study evaluated the effects of oral administration of surface-deacetylated chitin nanofibers (SDACNFs) on hypercholesterolemia using an experimental model. All rats were fed a high cholesterol diet with 1% w/w cholesterol and 0.5% w/w cholic acid for 28 days. Rats were divided equally into four groups: the control group was administered 0.05% acetic acid dissolved in tap water, and the SDACNF, chitosan (CS), and cellulose nanofiber (CLNF) groups were administered 0.1% CNF, CS, or CLNF dissolved in the tap water, respectively, during the experimental period. Changes in body weight, intake of food and water, and organ weight were measured. Serum blood chemistry and histopathological examination of the liver were performed. Administration of SDACNF did not affect body weight change, food and water intake, or organ weights. Administration of SDACNF and CS decreased the diet-induced increase in serum total cholesterol, chylomicron, very-low-density lipoprotein, and phospholipid levels on day 14. Moreover, oral administration of SDACNFs suppressed the increase of alanine transaminase levels on day 29 and suppressed vacuolar degeneration and accumulation of lipid droplets in liver tissue. These data indicate that SDACNF has potential as a functional food for patients with hypercholesterolemia.
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spelling pubmed-45812012015-09-28 Effects of Surface-Deacetylated Chitin Nanofibers in an Experimental Model of Hypercholesterolemia Azuma, Kazuo Nagae, Tomone Nagai, Takeshi Izawa, Hironori Morimoto, Minoru Murahata, Yusuke Osaki, Tomohiro Tsuka, Takeshi Imagawa, Tomohiro Ito, Norihiko Okamoto, Yoshiharu Saimoto, Hiroyuki Ifuku, Shinsuke Int J Mol Sci Article This study evaluated the effects of oral administration of surface-deacetylated chitin nanofibers (SDACNFs) on hypercholesterolemia using an experimental model. All rats were fed a high cholesterol diet with 1% w/w cholesterol and 0.5% w/w cholic acid for 28 days. Rats were divided equally into four groups: the control group was administered 0.05% acetic acid dissolved in tap water, and the SDACNF, chitosan (CS), and cellulose nanofiber (CLNF) groups were administered 0.1% CNF, CS, or CLNF dissolved in the tap water, respectively, during the experimental period. Changes in body weight, intake of food and water, and organ weight were measured. Serum blood chemistry and histopathological examination of the liver were performed. Administration of SDACNF did not affect body weight change, food and water intake, or organ weights. Administration of SDACNF and CS decreased the diet-induced increase in serum total cholesterol, chylomicron, very-low-density lipoprotein, and phospholipid levels on day 14. Moreover, oral administration of SDACNFs suppressed the increase of alanine transaminase levels on day 29 and suppressed vacuolar degeneration and accumulation of lipid droplets in liver tissue. These data indicate that SDACNF has potential as a functional food for patients with hypercholesterolemia. MDPI 2015-07-30 /pmc/articles/PMC4581201/ /pubmed/26263969 http://dx.doi.org/10.3390/ijms160817445 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 Attribution license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Azuma, Kazuo
Nagae, Tomone
Nagai, Takeshi
Izawa, Hironori
Morimoto, Minoru
Murahata, Yusuke
Osaki, Tomohiro
Tsuka, Takeshi
Imagawa, Tomohiro
Ito, Norihiko
Okamoto, Yoshiharu
Saimoto, Hiroyuki
Ifuku, Shinsuke
Effects of Surface-Deacetylated Chitin Nanofibers in an Experimental Model of Hypercholesterolemia
title Effects of Surface-Deacetylated Chitin Nanofibers in an Experimental Model of Hypercholesterolemia
title_full Effects of Surface-Deacetylated Chitin Nanofibers in an Experimental Model of Hypercholesterolemia
title_fullStr Effects of Surface-Deacetylated Chitin Nanofibers in an Experimental Model of Hypercholesterolemia
title_full_unstemmed Effects of Surface-Deacetylated Chitin Nanofibers in an Experimental Model of Hypercholesterolemia
title_short Effects of Surface-Deacetylated Chitin Nanofibers in an Experimental Model of Hypercholesterolemia
title_sort effects of surface-deacetylated chitin nanofibers in an experimental model of hypercholesterolemia
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4581201/
https://www.ncbi.nlm.nih.gov/pubmed/26263969
http://dx.doi.org/10.3390/ijms160817445
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