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Frontiers of Materials Science

ISSN 2095-025X

ISSN 2095-0268(Online)

CN 11-5985/TB

Postal Subscription Code 80-974

2018 Impact Factor: 1.701

Front Mater Sci    2013, Vol. 7 Issue (1) : 76-82    https://doi.org/10.1007/s11706-013-0188-6
RESEARCH ARTICLE
A study on the in vitro degradation of poly(L-lactide)/chitosan microspheres scaffolds
Ning ZHU1(), David COOPER2, Xiong-Biao CHEN1,3, Catherine Hui NIU4
1. Division of Biomedical Engineering, University of Saskatchewan, Saskatoon, Saskatchewan, Canada; 2. Department of Anatomy and Cell Biology, University of Saskatchewan, Saskatoon, Saskatchewan, Canada; 3. Department of Mechanical Engineering, University of Saskatchewan, Saskatoon, Saskatchewan, Canada; 4. Department of Chemical Engineering, University of Saskatchewan, Saskatoon, Saskatchewan, Canada
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Abstract

Recent research shows that the addition of chitosan microspheres (CMs) to poly(L-lactide) (PLLA) can result in a composite scaffold material with improved biocompatibility and mechanical properties for tissue engineering applications. However, research regarding the influence of CMs on scaffold degradation is absent in the literature. This paper presents a study on the in vitro degradation of scaffolds made from PLLA with CMs. In this study, the PLLA/CMs scaffolds with a 25% ratio of CMs to PLLA were immersed in phosphate-buffered saline (PBS) solution at 37°C for 8 weeks. The in vitro degradation of the scaffolds was investigated using micro-computed tomography (μCT), weight loss analysis, Raman spectroscopy, and differential scanning calorimetry (DSC). Microstructure changes during degradation were monitored using μCT. The μCT results were consistent with the results obtained from Raman spectra and DSC analysis, which reflected that adding CMs into PLLA can decrease the degradation rate compared with pure PLLA scaffolds. The results suggest that PLLA/CMs scaffold degradation can be regulated and controlled to meet requirements imposed a given tissue engineering application.

Keywords poly(L-lactide) (PLLA)      chitosan      scaffold      degradation      tissue engineering     
Corresponding Author(s): ZHU Ning,Email:rickzn@gmail.com   
Issue Date: 05 March 2013
 Cite this article:   
Ning ZHU,David COOPER,Xiong-Biao CHEN, et al. A study on the in vitro degradation of poly(L-lactide)/chitosan microspheres scaffolds[J]. Front Mater Sci, 2013, 7(1): 76-82.
 URL:  
https://academic.hep.com.cn/foms/EN/10.1007/s11706-013-0188-6
https://academic.hep.com.cn/foms/EN/Y2013/V7/I1/76
Fig.1  Micro-tomography quantitative analysis for pore size distribution of PLLA and PLLA/CMs scaffolds at time point 0, 6, and 8 weeks during scaffold degradation in PBS for 8 weeks .
Fig.2  Weight loss fraction of PLLA and PLLA/CMs scaffolds during scaffold degradation in PBS for 8 weeks.
Fig.3  Raman spectra of both PLLA and PLLA/CMs scaffolds during degradation in PBS for 8 weeks : PLLA scaffolds degraded for 0 week (a); PLLA scaffolds degraded for 8 weeks (b); PLLA/CMs scaffolds degraded for 0 week (c); PLLA/CMs scaffolds degraded for 8 weeks (d).
Fig.4  Raman / intensity ratios for PLLA and PLLA/CMs scaffolds during degradation in PBS for 8 weeks .
SampleTime/weekΔH /(J·g-1)χ /%
PLLA046.1234.2
246.3034.3
448.3635.8
849.1436.5
PLLA/CMs033.1824.6
234.2925.4
435.8926.6
836.1226.8
Tab.1  Thermodynamic characteristics of PLLA and PLLA/CMs after scaffold degradation in PBS for 0, 2, 4, 8 weeks
Fig.5  Crystallinity () of PLLA in PLLA and PLLA/CMs scaffolds as a function of degradation time.
1 Cheung H-Y, Lau K-T, Lu T-P, . A critical review on polymer-based bio-engineered materials for scaffold development. Composites Part B: Engineering , 2007, 38(3): 291-300
2 Katti D S, Lakshmi S, Langer R, . Toxicity, biodegradation and elimination of polyanhydrides. Advanced Drug Delivery Reviews , 2002, 54(7): 933-961
3 Nair L S, Laurencin C T. Biodegradable polymers as biomaterials. Progress in Polymer Science , 2007, 32(8-9): 762-798
4 Koh H S, Yong T, Chan C K, . Enhancement of neurite outgrowth using nano-structured scaffolds coupled with laminin. Biomaterials , 2008, 29(26): 3574-3582
5 Ma Z W, Gao C Y, Gong Y H, . Cartilage tissue engineering PLLA scaffold with surface immobilized collagen and basic fibroblast growth factor. Biomaterials , 2005, 26(11): 1253-1259
6 Chen V J, Smith L A, Ma P X. Bone regeneration on computer-designed nano-fibrous scaffolds. Biomaterials , 2006, 27(21): 3973-3979
7 Cam D, Hyon S-H, Ikada Y. Degradation of high molecular weight poly(l-lactide) in alkaline medium. Biomaterials , 1995, 16(11): 833-843
8 Tsuji H, Nakahara K, Ikarashi K. Poly(l-lactide), 8. High-temperature hydrolysis of poly(l-lactide) films with different crystallinities and crystalline thicknesses in phosphate-buffered solution. Macromolecular Materials and Engineering , 2001, 286(7): 398-406
9 Grizzi I, Garreau H, Li S, . Hydrolytic degradation of devices based on poly(DL-lactic acid) size-dependence. Biomaterials , 1995, 16(4): 305-311
10 Li X M, Feng Q L, Cui F Z. In vitro degradation of porous nano-hydroxyapatite/collagen/PLLA scaffold reinforced by chitin fibres. Materials Science and Engineering C , 2006, 26(4): 716-720
11 Alves N M, Mano J F. Chitosan derivatives obtained by chemical modifications for biomedical and environmental applications. International Journal of Biological Macromolecules , 2008, 43(5): 401-414
12 Muzzarelli R A A. Chitins and chitosans for the repair of wounded skin, nerve, cartilage and bone. Carbohydrate Polymers , 2009, 76(2): 167-182
13 Duarte A R C, Mano J F, Reis R L. Novel 3D scaffolds of chitosan-PLLA blends for tissue engineering applications: Preparation and characterization. The Journal of Supercritical Fluids , 2010, 54(3): 282-289
14 Zhu N, Li M G, Cooper D, . Development of novel hybrid poly(l-lactide)/chitosan scaffolds using the rapid freeze prototyping technique. Biofabrication , 2011, 3(3): 034105
15 Miyata T, Masuko T. Crystallization behaviour of poly(l-lactide). Polymer , 1998, 39(22): 5515-5521
16 Widjaja E, Lee W L, Loo S C J. Application of Raman microscopy to biodegradable double-walled microspheres. Analytical Chemistry , 2010, 82(4): 1277-1282
17 Bertoluzza A, Fagnano C, Mietti N, . In: Haris P I, Chapman D, eds. New Biomedical Materials: Basic and Applied Studies . IOS Press, 1998, 45
18 Taddei P, Monti P, Simoni R. Vibrational and thermal study on the in vitro and in vivo degradation of a poly(lactic acid)-based bioabsorbable periodontal membrane. Journal of Materials Science: Materials in Medicine , 2002, 13(5): 469-475
19 Fischer E W, Sterzel H J, Wegner G. Investigation of the structure of solution grown crystals of lactide copolymers by means of chemical reactions. Colloid and Polymer Science , 1973, 251(11): 980-990
20 Dong H Y, Meng B, Zhu N, . Biomineralization of five polymers in human bile. Materials Science and Engineering C , 2006, 26(4): 670-674
21 Alluin O, Wittmann C, Marqueste T, . Functional recovery after peripheral nerve injury and implantation of a collagen guide. Biomaterials , 2009, 30(3): 363-373
22 Jiao H S, Yao J, Yang Y M, . Chitosan/polyglycolic acid nerve grafts for axon regeneration from prolonged axotomized neurons to chronically denervated segments. Biomaterials , 2009, 30(28): 5004-5018
23 von Recum H A, Cleek R L, Eskin S G, . Degradation of polydispersed poly(l-lactic acid) to modulate lactic acid release. Biomaterials , 1995, 16(6): 441-447
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