Fresh 3D printing of double crosslinked hyaluronic acid/pectin hydrogels
Daniele M. Catori, Marcos V. Lorevice, Laura C. E. da Silva, Geovany Candido, Ana L. G. Millás, Marcelo G. de Oliveira
ARTIGO
Inglês
Agradecimentos: This work was supported by the São Paulo Research Foundation (FAPESP) (Projects 2016/02414-5 and 2019/05274-8). DMC received studentship from Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES). LCES and MVL received a fellowship from FAPESP (Projects 2018/14142-5 and...
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Agradecimentos: This work was supported by the São Paulo Research Foundation (FAPESP) (Projects 2016/02414-5 and 2019/05274-8). DMC received studentship from Coordenação de Aperfeiçoamento de Pessoal de Nível Superior (CAPES). LCES and MVL received a fellowship from FAPESP (Projects 2018/14142-5 and 2021/00491-0)
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Abstract: 3D printing has emerged as a first-line approach for the fabrication of complex structures. In the biomedical field, extrusion-based is the most popular printing technique. However, a limited range of biocompatible printable inks is available for this technique because, typically,...
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Abstract: 3D printing has emerged as a first-line approach for the fabrication of complex structures. In the biomedical field, extrusion-based is the most popular printing technique. However, a limited range of biocompatible printable inks is available for this technique because, typically, low-viscosity inks are not printable, or the resulting constructs are unable to self-support. In this work, use of the Freeform Reversible Embedding of Suspended Hydrogels (FRESH) extrusion-based technique to fabricate self-supported 3D constructs from low-viscosity polysaccharide inks composed of methacrylated hyaluronic acid (HA(GM)) and methacrylated pectin (PEC(GM)) is aimed. The use of a support bath of gelatin slurry to sustain the extruded filaments during both printing and post curing allows reaching a shape fidelity so far unreported for low-viscosity polysaccharide inks. Moreover, the methacrylate groups of HA(GM) and PEC(GM) lead to double crosslinked hydrogels, where the calcium ions added to the gelatin slurry promote the ionotropic gelation of PEC(GM), while the methacrylate groups of both PEC(GM) and HA(GM) promote their photocrosslinking after UV irradiation. The resulting 3D constructs exhibit elastic modulus in the range of 0.5–2.3 kPa, which is suitable for the 3D printing of constructs for soft tissue repair or substitution
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COORDENAÇÃO DE APERFEIÇOAMENTO DE PESSOAL DE NÍVEL SUPERIOR - CAPES
FUNDAÇÃO DE AMPARO À PESQUISA DO ESTADO DE SÃO PAULO - FAPESP
2016/02414-5; 2018/14142-5; 2019/05274-8; 2021/00491-0
Fechado
Fresh 3D printing of double crosslinked hyaluronic acid/pectin hydrogels
Daniele M. Catori, Marcos V. Lorevice, Laura C. E. da Silva, Geovany Candido, Ana L. G. Millás, Marcelo G. de Oliveira
Fresh 3D printing of double crosslinked hyaluronic acid/pectin hydrogels
Daniele M. Catori, Marcos V. Lorevice, Laura C. E. da Silva, Geovany Candido, Ana L. G. Millás, Marcelo G. de Oliveira
Fontes
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Macromolecular symposia (Fonte avulsa) |