Cargando…

In vitro stress effect on degradation and drug release behaviors of basic fibroblast growth factor – poly(lactic-co-glycolic-acid) microsphere

OBJECTIVE: To study the degradation and basic fibroblast growth factor (bFGF) release activity of bFGF – poly(lactic-co-glycolic-acid) microsphere (bFGF-PLGA MS) under stress in vitro, including the static pressure and shearing force-simulating mechanical environment of the joint cavity. METHOD: Fir...

Descripción completa

Detalles Bibliográficos
Autores principales: Xiong, Yan, Yu, Zeping, Lang, Yun, Hu, Juanyu, Li, Hong, Yan, Yonggang, Tu, Chongqi, Yang, Tianfu, Song, Yueming, Duan, Hong, Pei, Fuxing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Dove Medical Press 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4734730/
https://www.ncbi.nlm.nih.gov/pubmed/26869764
http://dx.doi.org/10.2147/DDDT.S93554
_version_ 1782412962541076480
author Xiong, Yan
Yu, Zeping
Lang, Yun
Hu, Juanyu
Li, Hong
Yan, Yonggang
Tu, Chongqi
Yang, Tianfu
Song, Yueming
Duan, Hong
Pei, Fuxing
author_facet Xiong, Yan
Yu, Zeping
Lang, Yun
Hu, Juanyu
Li, Hong
Yan, Yonggang
Tu, Chongqi
Yang, Tianfu
Song, Yueming
Duan, Hong
Pei, Fuxing
author_sort Xiong, Yan
collection PubMed
description OBJECTIVE: To study the degradation and basic fibroblast growth factor (bFGF) release activity of bFGF – poly(lactic-co-glycolic-acid) microsphere (bFGF-PLGA MS) under stress in vitro, including the static pressure and shearing force-simulating mechanical environment of the joint cavity. METHOD: First, bFGF-PLGA MSs were created. Meanwhile, two self-made experimental instruments (static pressure and shearing force loading instruments) were initially explored to provide stress-simulating mechanical environment of the joint cavity. Then, bFGF-PLGA MSs were loaded into the two instruments respectively, to study microsphere degradation and drug release experiments. In the static pressure loading experiment, normal atmospheric pressure loading (approximately 0.1 MPa), 0.35 MPa, and 4.0 MPa pressure loading and shaking flask oscillation groups were designed to study bFGF-PLGA MS degradation and bFGF release. In the shearing force loading experiment, a pulsating pump was used to give the experimental group an output of 1,000 mL/min and the control group an output of 10 mL/min to carry out bFGF-PLGA MS degradation and drug release experiments. Changes of bFGF-PLGA MSs, including microsphere morphology, quality, weight-average molecular weight of polymer, and microsphere degradation and bFGF release, were analyzed respectively. RESULTS: In the static pressure loading experiment, bFGF-PLGA MSs at different pressure were stable initially. The trend of molecular weight change, quality loss, and bFGF release was consistent. Meanwhile, microsphere degradation and bFGF release rates in the 4.0 MPa pressure loading group were faster than those in the normal and 0.35 MPa pressure loading groups. It was the fastest in the shaking flask group, showing a statistically significant difference (P<0.0001). In the shearing force loading experiment, there were no distinctive differences in the rates of microsphere degradation and bFGF release between experimental and control group. Meanwhile, microsphere degradation and bFGF release rates by shaking flask oscillation were obviously faster than those by shearing force only (P<0.0001). CONCLUSION: There are significant effects on bFGF-PLGA MS degradation and bFGF release due to the interaction between extraction stress and time. Static pressure has a conspicuous influence on bFGF-PLGA MS degradation and release, especially at a pressure of 4.0 MPa. The shearing force has a slight effect on bFGF-PLGA MS degradation and drug release. On the contrary, shaking flask oscillation has a significantly distinctive effect.
format Online
Article
Text
id pubmed-4734730
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Dove Medical Press
record_format MEDLINE/PubMed
spelling pubmed-47347302016-02-11 In vitro stress effect on degradation and drug release behaviors of basic fibroblast growth factor – poly(lactic-co-glycolic-acid) microsphere Xiong, Yan Yu, Zeping Lang, Yun Hu, Juanyu Li, Hong Yan, Yonggang Tu, Chongqi Yang, Tianfu Song, Yueming Duan, Hong Pei, Fuxing Drug Des Devel Ther Original Research OBJECTIVE: To study the degradation and basic fibroblast growth factor (bFGF) release activity of bFGF – poly(lactic-co-glycolic-acid) microsphere (bFGF-PLGA MS) under stress in vitro, including the static pressure and shearing force-simulating mechanical environment of the joint cavity. METHOD: First, bFGF-PLGA MSs were created. Meanwhile, two self-made experimental instruments (static pressure and shearing force loading instruments) were initially explored to provide stress-simulating mechanical environment of the joint cavity. Then, bFGF-PLGA MSs were loaded into the two instruments respectively, to study microsphere degradation and drug release experiments. In the static pressure loading experiment, normal atmospheric pressure loading (approximately 0.1 MPa), 0.35 MPa, and 4.0 MPa pressure loading and shaking flask oscillation groups were designed to study bFGF-PLGA MS degradation and bFGF release. In the shearing force loading experiment, a pulsating pump was used to give the experimental group an output of 1,000 mL/min and the control group an output of 10 mL/min to carry out bFGF-PLGA MS degradation and drug release experiments. Changes of bFGF-PLGA MSs, including microsphere morphology, quality, weight-average molecular weight of polymer, and microsphere degradation and bFGF release, were analyzed respectively. RESULTS: In the static pressure loading experiment, bFGF-PLGA MSs at different pressure were stable initially. The trend of molecular weight change, quality loss, and bFGF release was consistent. Meanwhile, microsphere degradation and bFGF release rates in the 4.0 MPa pressure loading group were faster than those in the normal and 0.35 MPa pressure loading groups. It was the fastest in the shaking flask group, showing a statistically significant difference (P<0.0001). In the shearing force loading experiment, there were no distinctive differences in the rates of microsphere degradation and bFGF release between experimental and control group. Meanwhile, microsphere degradation and bFGF release rates by shaking flask oscillation were obviously faster than those by shearing force only (P<0.0001). CONCLUSION: There are significant effects on bFGF-PLGA MS degradation and bFGF release due to the interaction between extraction stress and time. Static pressure has a conspicuous influence on bFGF-PLGA MS degradation and release, especially at a pressure of 4.0 MPa. The shearing force has a slight effect on bFGF-PLGA MS degradation and drug release. On the contrary, shaking flask oscillation has a significantly distinctive effect. Dove Medical Press 2016-01-25 /pmc/articles/PMC4734730/ /pubmed/26869764 http://dx.doi.org/10.2147/DDDT.S93554 Text en © 2016 Xiong et al. This work is published by Dove Medical Press Limited, and licensed under Creative Commons Attribution – Non Commercial (unported, v3.0) License The full terms of the License are available at http://creativecommons.org/licenses/by-nc/3.0/. Non-commercial uses of the work are permitted without any further permission from Dove Medical Press Limited, provided the work is properly attributed.
spellingShingle Original Research
Xiong, Yan
Yu, Zeping
Lang, Yun
Hu, Juanyu
Li, Hong
Yan, Yonggang
Tu, Chongqi
Yang, Tianfu
Song, Yueming
Duan, Hong
Pei, Fuxing
In vitro stress effect on degradation and drug release behaviors of basic fibroblast growth factor – poly(lactic-co-glycolic-acid) microsphere
title In vitro stress effect on degradation and drug release behaviors of basic fibroblast growth factor – poly(lactic-co-glycolic-acid) microsphere
title_full In vitro stress effect on degradation and drug release behaviors of basic fibroblast growth factor – poly(lactic-co-glycolic-acid) microsphere
title_fullStr In vitro stress effect on degradation and drug release behaviors of basic fibroblast growth factor – poly(lactic-co-glycolic-acid) microsphere
title_full_unstemmed In vitro stress effect on degradation and drug release behaviors of basic fibroblast growth factor – poly(lactic-co-glycolic-acid) microsphere
title_short In vitro stress effect on degradation and drug release behaviors of basic fibroblast growth factor – poly(lactic-co-glycolic-acid) microsphere
title_sort in vitro stress effect on degradation and drug release behaviors of basic fibroblast growth factor – poly(lactic-co-glycolic-acid) microsphere
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4734730/
https://www.ncbi.nlm.nih.gov/pubmed/26869764
http://dx.doi.org/10.2147/DDDT.S93554
work_keys_str_mv AT xiongyan invitrostresseffectondegradationanddrugreleasebehaviorsofbasicfibroblastgrowthfactorpolylacticcoglycolicacidmicrosphere
AT yuzeping invitrostresseffectondegradationanddrugreleasebehaviorsofbasicfibroblastgrowthfactorpolylacticcoglycolicacidmicrosphere
AT langyun invitrostresseffectondegradationanddrugreleasebehaviorsofbasicfibroblastgrowthfactorpolylacticcoglycolicacidmicrosphere
AT hujuanyu invitrostresseffectondegradationanddrugreleasebehaviorsofbasicfibroblastgrowthfactorpolylacticcoglycolicacidmicrosphere
AT lihong invitrostresseffectondegradationanddrugreleasebehaviorsofbasicfibroblastgrowthfactorpolylacticcoglycolicacidmicrosphere
AT yanyonggang invitrostresseffectondegradationanddrugreleasebehaviorsofbasicfibroblastgrowthfactorpolylacticcoglycolicacidmicrosphere
AT tuchongqi invitrostresseffectondegradationanddrugreleasebehaviorsofbasicfibroblastgrowthfactorpolylacticcoglycolicacidmicrosphere
AT yangtianfu invitrostresseffectondegradationanddrugreleasebehaviorsofbasicfibroblastgrowthfactorpolylacticcoglycolicacidmicrosphere
AT songyueming invitrostresseffectondegradationanddrugreleasebehaviorsofbasicfibroblastgrowthfactorpolylacticcoglycolicacidmicrosphere
AT duanhong invitrostresseffectondegradationanddrugreleasebehaviorsofbasicfibroblastgrowthfactorpolylacticcoglycolicacidmicrosphere
AT peifuxing invitrostresseffectondegradationanddrugreleasebehaviorsofbasicfibroblastgrowthfactorpolylacticcoglycolicacidmicrosphere