Literature DB >> 32801268

3D spheroid culture models for chondrocytes using polyethylene glycol-coated microfabricated chip.

Wataru Ariyoshi1, Michihiko Usui2, Kotaro Sano2, Aki Kawano1, Toshinori Okinaga3, Keisuke Nakashima2, Kohji Nakazawa4, Tatsuji Nishihara1.   

Abstract

As chondrocytes fail to retain their chondrogenic potential in two-dimensional monolayer cultures, several three-dimensional culture systems have been employed for investigating the physiology and pathophysiology in articular cartilage tissues. In this study, we introduced a polyethylene glycol-coated microfabricated chip that enables spheroid formation from ATDC5 cell line, commonly used as a model for in vitro chondrocyte research. ATDC5 cells cultured in our devices aggregated immediately and generated a single spheroid per well within 24 h. Most cells in spheroids cultured in differentiation medium were viable and the circular shape and smooth surface of the spheroid were maintained up to 14 d in culture. We also detected potent hypoxia conditions, a key factor in chondrogenesis, in whole lesions of ATDC5 spheroids. Expression of chondrogenesis-related genes and type X collagen protein was significantly increased in ATDC5 spheroids grown in differentiation medium, compared with monolayer-cultured ATDC5 cells. We also demonstrated that the differentiation medium-induced Akt protein phosphorylation was upregulated in ATDC5 cells cultured in our spheroid device, suggesting that enhancement of chondrogenic potential in ATDC5 spheroids results from PI3/Akt signaling activation. These results indicated that our spheroid culture system could constitute a high-throughput strategy approach towards elucidating the molecular mechanisms that regulate chondrogenesis.

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Year:  2020        PMID: 32801268     DOI: 10.2220/biomedres.41.187

Source DB:  PubMed          Journal:  Biomed Res        ISSN: 0388-6107            Impact factor:   1.203


  1 in total

1.  The Critical Role of Hypoxia in the Re-Differentiation of Human Articular Chondrocytes.

Authors:  Carlos Martinez-Armenta; Carlos Suarez-Ahedo; Anell Olivos-Meza; María C Camacho-Rea; Laura E Martínez-Gómez; Guadalupe Elizabeth Jimenez-Gutierrez; Gabriela A Martínez-Nava; Luis E Gomez-Quiroz; Carlos Pineda; Alberto López-Reyes
Journal:  Cells       Date:  2022-08-17       Impact factor: 7.666

  1 in total

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