In Vitro Degradation of Electrospun Poly(Lactic-Co-Glycolic Acid) (PLGA) for Oral Mucosa Regeneration

被引:33
作者
Chor, Ana [1 ]
Goncalves, Raquel Pires [2 ]
Costa, Andrea Machado [1 ]
Farina, Marcos [1 ]
Ponche, Arnaud [3 ,4 ]
Sirelli, Lys [2 ]
Schrodj, Gautier [3 ,4 ]
Gree, Simon [3 ,4 ]
de Andrade, Leonardo Rodrigues [1 ,5 ]
Anselme, Karine [3 ,4 ]
Dias, Marcos Lopes [2 ]
机构
[1] Univ Fed Rio de Janeiro, Inst Biomed Sci, Biomineralizat Lab, BR-21941902 Rio De Janeiro, Brazil
[2] Univ Fed Rio de Janeiro, Inst Macromol Prof Eloisa Mano, BR-21941598 Rio De Janeiro, Brazil
[3] Univ Haute Alsace, Mulhouse Mat Sci Inst IS2M, CNRS, UMR 7361, F-68100 Mulhouse, France
[4] Univ Strasbourg, F-67081 Strasbourg, France
[5] Salk Inst Biol Studies, La Jolla, CA 92037 USA
关键词
biomaterials; electrospinning; in vitro degradation; oral mucosa; PLGA; saliva; simulated body fluid; MORPHOLOGY CHANGES; SIMULATED BODY; SCAFFOLDS; STERILIZATION; DELIVERY; BEHAVIOR; SALIVA; FILMS; WATER;
D O I
10.3390/polym12081853
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Poly(lactic-co-glycolic acid) (PLGA) has been used in the field of tissue engineering as a scaffold due to its good biocompatibility, biodegradability and mechanical strength. With the aim to explore the degradability of PLGA electrospun nonwoven structures for oral mucosa tissue engineering applications, non-irradiated and gamma irradiated nonwovens were immersed in three different solutions, in which simulated body fluid (SBF) and artificial saliva are important for future oral mucosa tissue engineering. The nonwovens were immersed for 7, 15 and 30 days in SBF, culture media (DMEM) and artificial saliva at 37 degrees C. Before immersion in the solutions, the dosage of 15 kGy was applied for sterilization in one assay and compared with non-irradiated samples at the same timepoints. Samples were characterized using different techniques such as scanning electron microscopy (SEM), differential scanning calorimetric (DSC) and gel permeation chromatography (GPC) to evaluate the nonwoven degradation and Fourier-transform infrared spectroscopy (FTIR) to evaluate the chain scissions. Our results showed that PLGA nonwovens were constituted by semicrystalline fibers with moderate degradation properties up to thirty days. The non-irradiated samples exhibited slower kinetics of degradation than irradiated nonwovens. For immersion times longer than 7 days in the three different solutions, the mean diameter of irradiated fibers stayed in the same range, but significantly different from the control sample. On non-irradiated samples, the degradation kinetics was slower and the plateau in the diameter value was only attained after 30 days of immersion in the fluids. Plasticization (fluid absorption into the fiber structure) occurred in the bulk material, as confirmed by a decrease in Tg observed by DSC analyses of non-irradiated and irradiated nonwovens, in comparison with the respective controls. In addition, artificial saliva showed a higher capacity of influencing PLGA crystallization than SBF and DMEM. FTIR analyses showed typical PLGA chemical functional groups changes. These results will be important for future application of those PLGA electrospun nonwovens for oral mucosa regeneration.
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页数:19
相关论文
共 47 条
[1]  
Azimi B, 2014, J ENG FIBER FABR, V9, P47
[2]   Cell response to sterilized electrospun poly(-caprolactone) scaffolds to aid tendon regeneration in vivo [J].
Bhaskar, Prajwal ;
Bosworth, Lucy A. ;
Wong, Richard ;
O'brien, Marie A. ;
Kriel, Haydn ;
Smit, Eugene ;
McGrouther, Duncan A. ;
Wong, Jason K. ;
Cartmell, Sarah H. .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2017, 105 (02) :389-397
[3]   Development of biodegradable electrospun scaffolds for dermal replacement [J].
Blackwood, Keith A. ;
McKean, Rob ;
Canton, Irene ;
Freeman, Christine O. ;
Franklin, Kirsty L. ;
Cole, Daryl ;
Brook, Ian ;
Farthing, Paula ;
Rimmer, Stephen ;
Haycock, John W. ;
Ryan, Anthony J. ;
MacNeil, Sheila .
BIOMATERIALS, 2008, 29 (21) :3091-3104
[4]   Plasticizing effect of water on poly(lactide-co-glycolide) [J].
Blasi, P ;
D'Souza, SS ;
Selmin, F ;
DeLuca, PP .
JOURNAL OF CONTROLLED RELEASE, 2005, 108 (01) :1-9
[5]   Postproduction Processing of Electrospun Fibres for Tissue Engineering [J].
Bye, Frazer J. ;
Wang, Linge ;
Bullock, Anthony J. ;
Blackwood, Keith A. ;
Ryan, Anthony J. ;
MacNeil, Sheila .
JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2012, (66)
[6]   Sterilization techniques for biodegradable scaffolds in tissue engineering applications [J].
Dai, Zheng ;
Ronholm, Jennifer ;
Tian, Yiping ;
Sethi, Benu ;
Cao, Xudong .
JOURNAL OF TISSUE ENGINEERING, 2016, 7
[7]   Electrospun Nanofibers of Poly(lactic acid)/Graphene Nanocomposites [J].
Dias, Marcos L. ;
Dip, Rocio M. M. ;
Souza, Diego H. S. ;
Nascimento, Jefferson P. ;
Santos, Adelina P. ;
Furtado, Clascidia A. .
JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2017, 17 (04) :2531-2540
[8]   PLGA/Ag nanocomposites: in vitro degradation study and silver ion release [J].
Fortunati, E. ;
Latterini, L. ;
Rinaldi, S. ;
Kenny, J. M. ;
Armentano, I. .
JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2011, 22 (12) :2735-2744
[9]   An Overview of Poly(lactic-co-glycolic) Acid (PLGA)-Based Biomaterials for Bone Tissue Engineering [J].
Gentile, Piergiorgio ;
Chiono, Valeria ;
Carmagnola, Irene ;
Hatton, Paul V. .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2014, 15 (03) :3640-3659
[10]   In vitro validation of biomedical polyester-based scaffolds: Poly(lactide-co-glycolide) as model-case [J].
Gil-Castell, O. ;
Badia, J. D. ;
Ontoria-Oviedo, I. ;
Castellano, D. ;
Marco, B. ;
Rabal, A. ;
Bou, J. J. ;
Serra, A. ;
Monreal, L. ;
Blanes, M. ;
Sepulveda, P. ;
Ribes-Greus, A. .
POLYMER TESTING, 2018, 66 :256-267