Human Engineered Cartilage and Decellularized Matrix as an Alternative to Animal Osteoarthritis Model

被引:26
作者
Galuzzi, Marta [1 ]
Perteghella, Sara [2 ,3 ]
Antonioli, Barbara [1 ]
Tosca, Marta Cecilia [1 ]
Bari, Elia [2 ]
Tripodo, Giuseppe [2 ]
Sorrenti, Milena [2 ]
Catenacci, Laura [2 ]
Mastracci, Luca [4 ]
Grillo, Federica [4 ]
Marazzi, Mario [1 ]
Torre, Maria Luisa [2 ,3 ]
机构
[1] ASST Niguarda Hosp, Tissue Therapy Unit, Piazza Osped Maggiore 3, I-20162 Milan, Italy
[2] Univ Pavia, Dept Drug Sci, Viale Taramelli 12, I-27100 Pavia, Italy
[3] PharmaExceed Srl, I-27100 Pavia, Italy
[4] Univ Genoa, IRCCS San Martino IST Hosp, Dept Surg Sci & Integrated Diagnost DISC, Sect Histopathol, Largo R Benzi 8, I-16121 Genoa, Italy
关键词
human chondrocytes; osteoarthritis; alginate; silk fibroin; beads; microcarrier; pellet; decellularized cartilage matrix; HUMAN ARTICULAR CHONDROCYTES; IN-VITRO; ALGINATE ENCAPSULATION; TISSUE; CULTURE; NASAL; CELLS; EXPRESSION; GEL;
D O I
10.3390/polym10070738
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
(1) Objective: to obtain a reproducible, robust, well-defined, and cost-affordable in vitro model of human cartilage degeneration, suitable for drug screening; (2) Methods: we proposed 3D models of engineered cartilage, considering two human chondrocyte sources (articular/nasal) and five culture methods (pellet, alginate beads, silk/alginate microcarriers, and decellularized cartilage). Engineered cartilages were treated with pro-inflammatory cytokine IL-1 beta to promote cartilage degradation; (3) Results: articular chondrocytes have been rejected since they exhibit low cellular doubling with respect to nasal cells, with longer culture time for cell expansion; furthermore, pellet and alginate bead cultures lead to insufficient cartilage matrix production. Decellularized cartilage resulted as good support for degeneration model, but long culture time and high cell amount are required to obtain the adequate scaffold colonization. Here, we proposed, for the first time, the combined use of decellularized cartilage, as aggrecanase substrate, with pellet, alginate beads, or silk/alginate microcarriers, as polymeric scaffolds for chondrocyte cultures. This approach enables the development of suitable models of cartilaginous pathology. The results obtained after cryopreservation also demonstrated that beads and microcarriers are able to preserve chondrocyte functionality and metabolic activity; (4) Conclusions: alginate and silk/alginate-based scaffolds can be easily produced and cryopreserved to obtain a cost-affordable and ready-to-use polymer-based product for the subsequent screening of anti-inflammatory drugs for cartilage diseases.
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页数:16
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