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Implantable porous gelatin microspheres sustained release of bFGF and improved its neuroprotective effect on rats after spinal cord injury

In this study, porous gelatin microspheres (GMSs) were constructed to improve the neuroprotective effect of basic fibroblast growth factor (bFGF) on spinal cord injury. GMSs were prepared by a W/O emulsion template, followed by cross-linking, washing and drying. The particle sizes and surface porosi...

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Autores principales: Lan, Li, Tian, Fu-Rong, ZhuGe, De-Li, ZhuGe, Qi-Chuan, Shen, Bi-Xin, Jin, Bing-Hui, Huang, Jian-Ping, Wu, Ming-Ze, Fan, Lu-Xin, Zhao, Ying-Zheng, Xu, He-Lin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5349659/
https://www.ncbi.nlm.nih.gov/pubmed/28291798
http://dx.doi.org/10.1371/journal.pone.0173814
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author Lan, Li
Tian, Fu-Rong
ZhuGe, De-Li
ZhuGe, Qi-Chuan
Shen, Bi-Xin
Jin, Bing-Hui
Huang, Jian-Ping
Wu, Ming-Ze
Fan, Lu-Xin
Zhao, Ying-Zheng
Xu, He-Lin
author_facet Lan, Li
Tian, Fu-Rong
ZhuGe, De-Li
ZhuGe, Qi-Chuan
Shen, Bi-Xin
Jin, Bing-Hui
Huang, Jian-Ping
Wu, Ming-Ze
Fan, Lu-Xin
Zhao, Ying-Zheng
Xu, He-Lin
author_sort Lan, Li
collection PubMed
description In this study, porous gelatin microspheres (GMSs) were constructed to improve the neuroprotective effect of basic fibroblast growth factor (bFGF) on spinal cord injury. GMSs were prepared by a W/O emulsion template, followed by cross-linking, washing and drying. The particle sizes and surface porosity of the blank GMSs were carefully characterized by scan electronic microscopy. The blank GMSs have a mean particle size of 35μm and theirs surface was coarse and porous. bFGF was easily encapsulated inside the bulk GMSs through diffusion along the porous channel. 200μg of bFGF was completely encapsulated in 100mg of GMSs. The bFGF-loaded GMSs displayed a continuous drug release pattern without an obvious burst release over two weeks in vitro. Moreover, the therapeutic effects of bFGF-loaded GMSs were also evaluated in spinal cord injury rat model. After implantation of bFGF-loaded GMSs, the recovery of the motor function of SCI rats were evaluated by behavioral score and foot print experiment. The motor function of SCI rats treated with bFGF-loaded GMSs was more obvious than that treated with free bFGF solution (P<0.05). At the 28(th) days after treatment, rats were sacrificed and the injured spinal were removed for histopathological and apoptosis examination. Compared with treatment with free bFGF solution, treatment with bFGF-loaded GMSs resulted in a less necrosis, less infiltration of leukocytes, and a reduced the cavity ratio and less apoptotic cells in injured spinal(P<0.01), indicating its better therapeutic effect. Implantable porous GMSs may be a potential carrier to deliver bFGF for therapy of spinal cord injury.
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spelling pubmed-53496592017-04-06 Implantable porous gelatin microspheres sustained release of bFGF and improved its neuroprotective effect on rats after spinal cord injury Lan, Li Tian, Fu-Rong ZhuGe, De-Li ZhuGe, Qi-Chuan Shen, Bi-Xin Jin, Bing-Hui Huang, Jian-Ping Wu, Ming-Ze Fan, Lu-Xin Zhao, Ying-Zheng Xu, He-Lin PLoS One Research Article In this study, porous gelatin microspheres (GMSs) were constructed to improve the neuroprotective effect of basic fibroblast growth factor (bFGF) on spinal cord injury. GMSs were prepared by a W/O emulsion template, followed by cross-linking, washing and drying. The particle sizes and surface porosity of the blank GMSs were carefully characterized by scan electronic microscopy. The blank GMSs have a mean particle size of 35μm and theirs surface was coarse and porous. bFGF was easily encapsulated inside the bulk GMSs through diffusion along the porous channel. 200μg of bFGF was completely encapsulated in 100mg of GMSs. The bFGF-loaded GMSs displayed a continuous drug release pattern without an obvious burst release over two weeks in vitro. Moreover, the therapeutic effects of bFGF-loaded GMSs were also evaluated in spinal cord injury rat model. After implantation of bFGF-loaded GMSs, the recovery of the motor function of SCI rats were evaluated by behavioral score and foot print experiment. The motor function of SCI rats treated with bFGF-loaded GMSs was more obvious than that treated with free bFGF solution (P<0.05). At the 28(th) days after treatment, rats were sacrificed and the injured spinal were removed for histopathological and apoptosis examination. Compared with treatment with free bFGF solution, treatment with bFGF-loaded GMSs resulted in a less necrosis, less infiltration of leukocytes, and a reduced the cavity ratio and less apoptotic cells in injured spinal(P<0.01), indicating its better therapeutic effect. Implantable porous GMSs may be a potential carrier to deliver bFGF for therapy of spinal cord injury. Public Library of Science 2017-03-14 /pmc/articles/PMC5349659/ /pubmed/28291798 http://dx.doi.org/10.1371/journal.pone.0173814 Text en © 2017 Lan et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Lan, Li
Tian, Fu-Rong
ZhuGe, De-Li
ZhuGe, Qi-Chuan
Shen, Bi-Xin
Jin, Bing-Hui
Huang, Jian-Ping
Wu, Ming-Ze
Fan, Lu-Xin
Zhao, Ying-Zheng
Xu, He-Lin
Implantable porous gelatin microspheres sustained release of bFGF and improved its neuroprotective effect on rats after spinal cord injury
title Implantable porous gelatin microspheres sustained release of bFGF and improved its neuroprotective effect on rats after spinal cord injury
title_full Implantable porous gelatin microspheres sustained release of bFGF and improved its neuroprotective effect on rats after spinal cord injury
title_fullStr Implantable porous gelatin microspheres sustained release of bFGF and improved its neuroprotective effect on rats after spinal cord injury
title_full_unstemmed Implantable porous gelatin microspheres sustained release of bFGF and improved its neuroprotective effect on rats after spinal cord injury
title_short Implantable porous gelatin microspheres sustained release of bFGF and improved its neuroprotective effect on rats after spinal cord injury
title_sort implantable porous gelatin microspheres sustained release of bfgf and improved its neuroprotective effect on rats after spinal cord injury
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5349659/
https://www.ncbi.nlm.nih.gov/pubmed/28291798
http://dx.doi.org/10.1371/journal.pone.0173814
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