Marine origin biomaterials using a compressive and absorption methodology as cell-laden hydrogel envisaging cartilage tissue engineering

被引:19
作者
Carvalho, Duarte Nuno [1 ,2 ]
Williams, David S. [3 ]
Sotelo, Carmen G. [4 ]
Perez-Martin, Ricardo I. [4 ]
Mearns-Spragg, Andrew [3 ]
Reis, Rui L. [1 ,2 ]
Silva, Tiago H. [1 ,2 ]
机构
[1] Univ Minho, European Inst Excellence Tissue Engn & Regenerat, I3Bs Res Inst Biomat Biodegradables & Biomimet, 3Bs Res Grp, Guimaraes, Portugal
[2] ICVS 3Bs PT Govt Associate Lab, Braga, Portugal
[3] Jellagen Ltd, Unit G6, Capital Business Pk,St Mellons, Cardiff CF3 2PY, Wales
[4] Inst Invest Marinas IIM CSIC, Grp Food Biochem, C Eduardo Cabello 6, Vigo, Spain
来源
BIOMATERIALS ADVANCES | 2022年 / 137卷
关键词
Marine biomaterials; Chondrocytes; Tissue-scaffolds; Biomedical engineering; Articular cartilage; PEPSIN-SOLUBILIZED COLLAGEN; RHEOLOGICAL CHARACTERIZATION; JELLYFISH COLLAGEN; II COLLAGEN; AMINO-ACID; FUCOIDAN; EXTRACTION; SCAFFOLDS; SKIN; CHITOSAN;
D O I
10.1016/j.bioadv.2022.212843
中图分类号
TB3 [工程材料学]; R318.08 [生物材料学];
学科分类号
0805 ; 080501 ; 080502 ;
摘要
In the recent decade, marine origin products have been growingly studied as building blocks complying with the constant demand of the biomedical sector regarding the development of new devices for Tissue Engineering and Regenerative Medicine (TERM). In this work, several combinations of marine collagen-chitosan-fucoidan hydrogel were formed using a newly developed eco-friendly compressive and absorption methodology to produce hydrogels (CAMPH), which consists of compacting the biopolymers solution while removing the excess of water. The hydrogel formulations were prepared by blending solutions of 5% collagen from jellyfish and/or 3% collagen from blue shark skin, with solutions of 3% chitosan from squid pens and solutions of 10% fucoidan from brown algae, at different ratios. The biopolymer physico-chemical characterization comprised Amino Acid analysis, ATR-FTIR, CD, SDS-PAGE, ICP, XRD, and the results suggested the shark/jellyfish collagen(s) conserved the triple helical structure and had similarities with type I and type II collagen, respectively. The studied collagens also contain a denaturation temperature of around 30-32 degrees C and a molecular weight between 120 and 125 kDa. Additionally, the hydrogel properties were determined by rheology, water uptake ability, degradation rate, and SEM, and the results showed that all formulations had interesting mechanical (strong viscoelastic character) and structural stability properties, with a significant positive highlight in the formulation of H-3 (blending all biopolymers, i.e., 5% collagen from jellyfish, 3% collagen from skin shark, 3% chitosan and 10% of fucoidan) in the degradation test, that shows a mass loss around 18% over the 30 days, while the H-1 and H-2, present a mass loss of around 35% and 44%, respectively. Additionally, the in vitro cellular assessments using chondrocyte cells (ATDC5) in encapsulated state revealed, for all hydrogel formulations, a non-cytotoxic behavior. Furthermore, Live/Dead assay and Phalloidin/DAPI staining, to assess the cytoskeletal organization, proved that the hydrogels can provide a suitable microenvironment for cell adhesion, viability, and proliferation, after being encapsulated. Overall, the results show that all marine collagen (jellyfish/shark)-chitosan-fucoidan hydrogel formulations provide a good structural architecture and microenvironment, highlighting the H-3 biomaterial due to containing more polymers in their composition, making it suitable for biomedical articular cartilage therapies.
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页数:14
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