Literature DB >> 29442071

Differentiation of osteoclast precursors on gellan gum-based spongy-like hydrogels for bone tissue engineering.

F Raquel Maia1, David S Musson, Dorit Naot, Lucilia P da Silva, Ana R Bastos, João B Costa, Joaquim M Oliveira, Vitor M Correlo, Rui L Reis, Jillian Cornish.   

Abstract

Bone tissue engineering with cell-scaffold constructs has been attracting a lot of attention, in particular as a tool for the efficient guiding of new tissue formation. However, the majority of the current strategies used to evaluate novel biomaterials focus on osteoblasts and bone formation, while osteoclasts are often overlooked. Consequently, there is limited knowledge on the interaction between osteoclasts and biomaterials. In this study, the ability of spongy-like gellan gum and hydroxyapatite-reinforced gellan gum hydrogels to support osteoclastogenesis was investigated in vitro. First, the spongy-like gellan gum and hydroxyapatite-reinforced gellan gum hydrogels were characterized in terms of microstructure, water uptake and mechanical properties. Then, bone marrow cells isolated from the long bones of mice and cultured in spongy-like hydrogels were treated with 1,25-dihydroxyvitamin D3 to promote osteoclastogenesis. It was shown that the addition of HAp to spongy-like gellan gum hydrogels enables the formation of larger pores and thicker walls, promoting an increase in stiffness. Hydroxyapatite-reinforced spongy-like gellan gum hydrogels support the formation of the aggregates of tartrate-resistant acid phosphatase-stained cells and the expression of genes encoding DC-STAMP and Cathepsin K, suggesting the differentiation of bone marrow cells into pre-osteoclasts. The hydroxyapatite-reinforced spongy-like gellan gum hydrogels developed in this work show promise for future use in bone tissue scaffolding applications.

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Year:  2018        PMID: 29442071     DOI: 10.1088/1748-605X/aaaf29

Source DB:  PubMed          Journal:  Biomed Mater        ISSN: 1748-6041            Impact factor:   3.715


  1 in total

1.  Hydroxyapatite-decorated Fmoc-hydrogel as a bone-mimicking substrate for osteoclast differentiation and culture.

Authors:  Mattia Vitale; Cosimo Ligorio; Bethan McAvan; Nigel W Hodson; Chris Allan; Stephen M Richardson; Judith A Hoyland; Jordi Bella
Journal:  Acta Biomater       Date:  2021-11-13       Impact factor: 8.947

  1 in total

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