Biocomposite Scaffolds Based on Chitosan Extraction from Shrimp Shell Waste for Cartilage Tissue Engineering Application

被引:0
|
作者
Chonanant, Chirapond [1 ]
Chancharoen, Pongrung [2 ]
Kiatkulanusorn, Sirirat [3 ]
Luangpon, Nongnuch [3 ]
Klarod, Kultida [3 ]
Surakul, Pornprom [3 ]
Thamwiriyasati, Niramon [1 ]
Singsanan, Sanita [1 ]
Ngernyuang, Nipaporn [4 ,5 ]
机构
[1] Burapha Univ, Fac Allied Hlth Sci, Dept Med Sci, Chon Buri 20131, Thailand
[2] Burapha Univ, Fac Allied Hlth Sci, Dept Med Sci, Chon Buri 20131, Thailand
[3] Burapha Univ, Fac Allied Hlth Sci, Dept Phys Therapy, Chon Buri 20131, Thailand
[4] Thammasat Univ, Thammasat Univ Res Unit Biomed Sci, Pathum Thani 12120, Thailand
[5] Thammasat Univ, Chulabhorn Int Coll Med, Pathum Thani 12120, Thailand
来源
ACS OMEGA | 2024年 / 9卷 / 38期
关键词
IN-VITRO CHARACTERIZATION; PORE-SIZE; CONTROLLED-RELEASE; AGAROSE SCAFFOLDS; GELATIN SCAFFOLDS; POROUS SCAFFOLD; CELL-GROWTH; CHITIN; NANOFIBER; HYDROXYAPATITE/CHITOSAN;
D O I
10.1021/acsomega.4c02910
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Chitosan-based scaffolding possesses unique properties that make it highly suitable for tissue engineering applications. Chitosan is derived from deacetylating chitin, which is particularly abundant in the shells of crustaceans. This study aimed to extract chitosan from shrimp shell waste (Macrobrachium rosenbergii) and produce biocomposite scaffolds using the extracted chitosan for cartilage tissue engineering applications. Chitinous material from shrimp shell waste was deproteinized and deacetylated. The extracted chitosan was characterized and compared to commercial chitosan through various physicochemical analyses. The findings revealed that the extracted chitosan shares similar trends in the Fourier transform infrared spectroscopy spectrum, energy dispersive X-ray mapping, and X-ray diffraction pattern to commercial chitosan. Despite differences in the degree of deacetylation, these results underscore its comparable quality. The extracted chitosan was mixed with agarose, collagen, and gelatin to produce the blending biocomposite AG-CH-COL-GEL scaffold by freeze-drying method. Results showed AG-CH-COL-GEL scaffolds have a 3D interconnected porous structure with pore size 88-278 mu m, high water uptake capacity (>90%), and degradation percentages in 21 days between 5.08% and 30.29%. Mechanical compression testing revealed that the elastic modulus of AG-CH-COL-GEL scaffolds ranged from 44.91 to 201.77 KPa. Moreover, AG-CH-COL-GEL scaffolds have shown significant potential in effectively inducing human chondrocyte proliferation and enhancing aggrecan gene expression. In conclusion, AG-CH-COL-GEL scaffolds emerge as promising candidates for cartilage tissue engineering with their optimal physical properties and excellent biocompatibility. This study highlights the potential of using waste-derived chitosan and opens new avenues for sustainable and effective tissue engineering solutions.
引用
收藏
页码:39419 / 39429
页数:11
相关论文
共 50 条
  • [31] Extraction of chitosan from shrimp shells waste and application in antibacterial finishing of bamboo rayon
    Teli, M. D.
    Sheikh, Javed
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2012, 50 (05) : 1195 - 1200
  • [32] Chitosan/polyester scaffolds seeded with bovine articular chondrocytes for cartilage tissue engineering
    不详
    INTERNATIONAL JOURNAL OF ARTIFICIAL ORGANS, 2005, 28 (09): : 934 - 934
  • [33] Electrospun poly(hydroxybutyrate)/chitosan blend fibrous scaffolds for cartilage tissue engineering
    Sadeghi, Davoud
    Karbasi, Saeed
    Razavi, Shahnaz
    Mohammadi, Sajjad
    Shokrgozar, Mohammad Ali
    Bonakdar, Shahin
    JOURNAL OF APPLIED POLYMER SCIENCE, 2016, 133 (47)
  • [34] Cartilage tissue engineering on fibrous chitosan scaffolds produced by a replica molding technique
    Ragetly, Guillaume R.
    Slavik, Gregory J.
    Cunningham, Brian T.
    Schaeffer, David J.
    Griffon, Dominique J.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2010, 93A (01) : 46 - 55
  • [35] In vitro and in vivo evaluation of chitosan-gelatin scaffolds for cartilage tissue engineering
    Whu, Shu Wen
    Hung, Kun-Che
    Hsieh, Kuo-Huang
    Chen, Chih-Hwa
    Tsai, Ching-Lin
    Hsu, Shan-hui
    MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2013, 33 (05): : 2855 - 2863
  • [36] Preparation of biomimetic multilayered scaffolds using collagen/chitosan for cartilage tissue engineering
    Shan, Cheng
    Sun, Xiao-Dan
    Zhan, Jing-Lin
    Yiyong Shengwu Lixue/Journal of Medical Biomechanics, 2010, 25 (01): : 26 - 31
  • [37] Scaffolds Based Bone Tissue Engineering: The Role of Chitosan
    Costa-Pinto, Ana Rita
    Reis, Rui L.
    Neves, Nuno M.
    TISSUE ENGINEERING PART B-REVIEWS, 2011, 17 (05) : 331 - 347
  • [38] Chitosan-based scaffolds for bone tissue engineering
    Levengood, Sheeny K. Lan
    Zhang, Miqin
    JOURNAL OF MATERIALS CHEMISTRY B, 2014, 2 (21) : 3161 - 3184
  • [39] Chondro-inductive hyaluronic acid/chitosan coacervate-based scaffolds for cartilage tissue engineering
    Acar, Ozge Karabiyik
    Bedir, Seden
    Kayitmazer, A. Basak
    Kose, Gamze Torun
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2021, 188 : 300 - 312
  • [40] Application of chitosan with different molecular weights in cartilage tissue engineering
    Zhang, Runjie
    Chang, Shwu Jen
    Jing, Yanzhen
    Wang, LiYuan
    Chen, Ching-Jung
    Liu, Jen-Tsai
    CARBOHYDRATE POLYMERS, 2023, 314