Biomimetic fiber mesh scaffolds based on gelatin and hydroxyapatite nano-rods: Designing intrinsic skills to attain bone reparation abilities

Mechanically robust Gelatin/nano-Hydroxyapatite scaffolds, exhibiting a highly interconnected fiber mesh structure. GE: Gelatin; HA: Hydroxyapatite; TA: Tannic Acid; ε: Compressive Modulus; σY: Yield Strength; σult: Ultimate Strength. [Display omitted] •Mechanically robust fiber mesh scaffolds displ...

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Published inColloids and surfaces, B, Biointerfaces Vol. 145; pp. 382 - 391
Main Authors Sartuqui, Javier, Gravina, A. Noel, Rial, Ramón, Benedini, Luciano A., Yahia, L'Hocine, Ruso, Juan M., Messina, Paula V.
Format Journal Article
LanguageEnglish
Published Netherlands Elsevier B.V 01.09.2016
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Summary:Mechanically robust Gelatin/nano-Hydroxyapatite scaffolds, exhibiting a highly interconnected fiber mesh structure. GE: Gelatin; HA: Hydroxyapatite; TA: Tannic Acid; ε: Compressive Modulus; σY: Yield Strength; σult: Ultimate Strength. [Display omitted] •Mechanically robust fiber mesh scaffolds displaying a porous structure are obtained.•Scaffolds exhibited a definite degree of roughness in the pore wall surface.•Highly cross-linked scaffold shows a facilitated entrapment of fluids.•Hydroxyapatite nano-rods reinforce the covalently cross-linked GE-TA network. Intrinsic material skills have a deep effect on the mechanical and biological performance of bone substitutes, as well as on its associated biodegradation properties. In this work we have manipulated the preparation of collagenous derived fiber mesh frameworks to display a specific composition, morphology, open macroporosity, surface roughness and permeability characteristics. Next, the effect of the induced physicochemical attributes on the scaffold’s mechanical behavior, bone bonding potential and biodegradability were evaluated. It was found that the scaffold microstructure, their inherent surface roughness, and the compression strength of the gelatin scaffolds can be modulated by the effect of the cross-linking agent and, essentially, by mimicking the nano-scale size of hydroxyapatite in natural bone. A clear effect of bioactive hydroxyapatite nano-rods on the scaffolds skills can be appreciated and it is greater than the effect of the cross-linking agent, offering a huge perspective for the upcoming progress of bone implant technology.
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ISSN:0927-7765
1873-4367
DOI:10.1016/j.colsurfb.2016.05.019